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 INTEGRATED CIRCUITS
NE57600 One-cell Lithium-ion battery protection with over/undercharge and overcurrent protection
Product data File under Integrated Circuits, Standard Analog 2001 Oct 03
Philips Semiconductors
Philips Semiconductors
Product data
One-cell Lithium-ion battery protection with over/undercharge and overcurrent protection
NE57600
GENERAL DESCRIPTION
The NE57600 series is a family of small, high-precision lithium-ion battery protection devices that provide protection against the damaging effects of overcharging, overdischarging, short circuit, and excessive current consumption such as happens if the consumer uses the battery for an apparatus it was not meant to power. The NE57600 is a single-cell Li-ion protection IC. The NE57600 over and under voltage accuracy is trimmed to within 25 mV (5%) and is available to match the requirements of all lithium-ion cells manufactured in the market today.
FEATURES
* Trimmed overvoltage trip point to within 25 mV * Programmable overvoltage trip time delay * Trimmed undervoltage trip point to within 25 mV * Very Low undervoltage sleep quiescent current 0.05 mA * Discharge overcurrent cutoff * Low operating current (10 mA) * Very small SOT-26A package
SIMPLIFIED SYSTEM DIAGRAM
APPLICATIONS
palmtop devices
* Protecting one-cell Li-ion battery packs for mobile phones or
V+
+
VCC
2
CDLY Li-ION CELL
3
NE57600
1
VM
CHARGER OR LOADER GND 5 DF 6 CF 4
-
V- DISCHARGE FET CHARGE FET
SL01548
Figure 1. Simplified system diagram.
2001 Oct 03
2
853-2294 27198
Philips Semiconductors
Product data
One-cell Lithium-ion battery protection with over/undercharge and overcurrent protection
NE57600
ORDERING INFORMATION
PACKAGE TYPE NUMBER NE57600XD NAME SOT-26A DESCRIPTION small outline plastic surface mount, 6-pin TEMPERATURE RANGE -20 to +70 C
NOTE: The device has ten protection parameter options, indicated by the X on the order code, and defined in the following table.
TYPICAL PROTECTION PARAMETERS IN THE NE57600 FAMILY
Part Number NE57600Y NE57600D NE57600E NE57600F NE57600C NE57600G NE57600W NE57600H NE57600J NE57600B Overcharge detection voltage (V) 4.200 4.200 4.250 4.250 4.280 4.295 4.300 4.325 4.325 4.350 Overcharge detection hysteresis voltage (mV) 200 200 200 150 200 150 150 200 200 200 Over-discharge detection voltage (V) 2.3 2.3 2.3 2.4 2.3 2.4 2.4 2.5 2.5 2.4 Over-discharge resumption voltage (V) 3.00 3.90 3.00 3.00 2.90 3.00 3.00 3.00 3.00 3.00 Overcurrent detection voltage (mV) 200 200 200 150 120 150 150 200 200 200
Part number marking
Each device is marked with a four letter code. The first three letters designate the product. The fourth letter, represented by "x", is a date tracking code. Part Number NE57600YD NE57600BD NE57600CD NE57600DD NE57600ED NE57600FD NE57600GD NE57600HD NE57600WD NE57600JD Marking AFAx AFBx AFCx AFDx AFEx AFFx AFGx AFHx AFJx AFKx
PIN CONFIGURATION
VM VCC CDLY 1 2 3 6 5 4 DF GND CF
SL01549
Figure 2. Pin configuration.
PIN DESCRIPTION
PIN 1 2 3 4 5 6 SYMBOL VM VCC CDLY CF GND DF DESCRIPTION Monitor pin. Detects overcurrent and the presence of a charger. Positive supply voltage input pin. Connect to positive terminal of the cell. Charge Time Delay pin. The capacitor connected to this pin sets the delay. Charge FET pin. This drives the gate of the charge control N-ch FET. Ground pin. Connect to negative terminal of the cell. Discharge detection pin. This drives the gate of the discharge N-ch FET.
2001 Oct 03
3
Philips Semiconductors
Product data
One-cell Lithium-ion battery protection with over/undercharge and overcurrent protection
NE57600
MAXIMUM RATINGS
SYMBOL VIN VCF(max) VVM(max) Tamb Tstg PD Input voltage CF pin voltage VM pin voltage Operating ambient temperature range Storage temperature Power dissipation PARAMETER MIN. -0.3 - - -20 -40 - MAX. +18 VCC - 28 VCC - 28 +70 +125 200 UNIT V V V C C mW
ELECTRICAL CHARACTERISTICS
Characteristics measured with Tamb = 25 C, unless otherwise specified. SYMBOL ICC1 ICC2 ICC3 ICC4 ICC5 VOV(th) VOV(hyst) VUV(th) VUV(rel) VOC(th) VOC(rel) VSC tDLY(OD) tOC(DT) tDLY(SC) tOLY(OV) VGDH IDFH1 IDFH2 IDFL1 IDFL2 ICF1 ICF2 VST VPRO VOV PARAMETER Current consumption 1 Current consumption 2 Current consumption 3 Current consumption 4 Current consumption 5 Over-charge voltage Over-charge hysteresis Over-discharge voltage Release over-discharge mode Over-current detect level Release over-current level Condition of release over-current mode Short detect level Over-discharge dead time Over-current dead time Short detect delay time Over-charge dead time DF pin LOW level DF pin source current 1 DF pin source current 2 DF pin sink current 1 DF pin sink current 2 CF pin source current 1 CF pin source current 2 Start trigger voltage Over-voltage charger protection OV charge minimum voltage VM: 0 V 0.5 V VM: 0 V 2 V CTD = 0.01 F VCC = 3.6 V VDF = VCC - 1.0 V VDF = VCC - 0.3 V VVM > 1.0 V; VDF = 1.0 V VVM > 1.0 V; VDF = 0.3 V VCF = VCC - 1.0 V VCF = VCC - 0.3 V VVM: 0 V -0.5 V VCC = 3.6 V, between GND-VM voltage VCC = 0 V; Charger voltage -0.2 -1.5 50 30 50 VCC-0.3 7.0 7.0 VVM: L H VVM: H L Load condition CONDITIONS VCC = 3.6 V: Set between CF-GND: 910 k connected VCC = 3.6 V: IC only between CF-GND: 910 k connected VCC = 3.6 V: Discharge FET OFF between CF-GND: 910 k not connected VCC = 1.9 V: Discharge FET OFF between CF-GND: 910 k not connected VCC = 4.5 V: Set between CF-BG: 910 k connected Tamb = 0 C 50 C VCC: L H VCC: H L VCC: H L 4.325 100 2.30 2.88 174 Min. Typ. 10.0 6.0 TBD 0.05 35 4.350 200 2.40 3.00 200 130 50 1.3 10.0 10.0 0.02 100 VCC-0.1 -100 -0.40 300 100 -20 -15 -0.1 -2.5 2.0 -10 -5 0 -3.0 3.0 15.0 15.0 0.20 150 VCC -30 -0.07 Max. 14.0 10.0 TBD 0.3 60 4.375 300 2.50 3.12 226 UNIT A A A A A V mV V V mV mV M V ms ms ms ms V A A A A A A V V V
2001 Oct 03
4
Philips Semiconductors
Product data
One-cell Lithium-ion battery protection with over/undercharge and overcurrent protection
NE57600
TYPICAL PERFORMANCE CURVES
10 6.0
Overcharge dead time (seconds)
5.0 Supply current, Icc (A)
1
4.0
3.0
0.1
2.0
1.0
0.0 0.01 0.01 0.1 EXTERNAL CAPACITOR (F) 1 Supply voltage, VCC (V) 0.0 1.0 2.0 3.0 4.0 5.0 6.0
SL01550
SL01552
Figure 3. Over-voltage time delay versus
Figure 5. Supply current versus supply voltage.
external capacitor.
60
50 Supply current, Icc (A) 40
VCC: H L
30
20 10
0 0.0 1.0 2.0 3.0 4.0 5.0 6.0 Supply voltage, VCC (V)
SL01551
Figure 4. Supply current versus supply voltage.
2001 Oct 03
5
Philips Semiconductors
Product data
One-cell Lithium-ion battery protection with over/undercharge and overcurrent protection
NE57600
TECHNICAL DISCUSSION Lithium Cell Safety
Lithium-ion and lithium-polymer cells have a higher energy density than that of nickel-cadmium or nickel metal hydride cells and have a much lighter weight. This makes the lithium cells attractive for use in portable products. However, lithium cells require a protection circuit within the battery pack because certain operating conditions can be hazardous to the battery or the operator, if allowed to continue. Lithium cells have a porous carbon or graphite anode where lithium ions can lodge themselves in the pores. The lithium ions are separated, which avoids the hazards of metallic lithium. If the lithium cell is allowed to become overcharged, metallic lithium plates out onto the surface of the anode and volatile gas is generated within the cell. This creates a rapid-disassembly hazard (the battery ruptures). If the cell is allowed to over-discharge (Vcell less than approximately 2.3 V), then the copper metal from the cathode goes into the electrolyte solution. This shortens the cycle life of the cell, but presents no safety hazard. If the cell experiences excessive charge or discharge currents, as happens if the wrong charger is used, or if the terminals short circuit, the internal series resistance of the cell creates heating and generates the volatile gas which could rupture the battery. The protection circuit continuously monitors the cell voltage for an overcharged condition or an overdischarged condition. It also continuously monitors the output for an overcurrent condition. If any of these conditions are encountered, the protection circuit opens a series MOSFET switch to terminate the abnormal condition. The lithium cell protection circuit is placed within the battery pack very close to the cell. Charging control versus battery protection The battery pack industry does not recommend using the pack's internal protection circuit to end the charging process. The external battery charger should have a charge termination circuit in it, such as that provided by the SA57611. This provides two levels of overcharge protection, with the primary protection of the external charge control circuit and the backup protection from the battery pack's protection circuit. The charge termination circuit will be set to stop charging at a level around 50 mV less than the overvoltage threshold voltage of the battery pack's own protection circuit.
Lithium Cell Operating Characteristics
The internal resistance of lithium cells is in the 100 m range, compared to the 5-20 m of the nickel-based batteries. This makes the Lithium-ion and polymer cells better for lower battery current applications (less than 1 ampere) as found in cellular and wireless telephones, palmtop and laptop computers, etc. The average operating voltage of a lithium-ion or polymer cell is 3.6 V as compared to the 1.2 V of NiCd and NiMH cells. The typical discharge curve for Lithium cell is shown in Figure 6.
OPEN-CIRCUIT CELL VOLTAGE (V)
4.0
VOV
3.0
VUV 2.0 50 NORMALIZED CELL CAPACITY (%)
100
SL01553
Figure 6. Lithium discharge curve.
2001 Oct 03
6
Philips Semiconductors
Product data
One-cell Lithium-ion battery protection with over/undercharge and overcurrent protection
NE57600
Charging Lithium Cells
CHARGE CURRENT (%C)
The lithium cells must be charged with a dedicated charging IC such as the NE57600. These dedicated charging ICs perform a current-limited, constant-voltage charge, as shown in Figure 7. The charger IC begins charging with a current that is typically the rating of the cell (1C) or the milliampere rating of the cell. As the cell approaches its full-charge voltage rating (VOV), the current entering the cell decreases, and the charger IC provides a constant voltage. When the charge current falls below a preset amount, 50 mA for example, the charge is discontinued. If charging is begun below the overdischarged voltage rating of the cell, it is important to slowly raise the cell voltage up to this overdischarged voltage level. This is done by a reconditioning charge. A small amount of current is provided to the cell (50 mA for example), and the cell voltage is allowed a period of time to rise to the overdischarged voltage. If the cell voltage recovers, then a normal charging sequence can begin. If the cell does not reach the overdischarged voltage level, then the cell is too damaged to charge and the charge is discontinued. To take advantage of the larger energy density of lithium cells it is important to allow enough time to completely charge the cell . When the charger switches from constant current to constant voltage charge (Point B, Figure 7) the cell only contains about 80 percent of its full capacity. When the cell is 100 mV less than its full rated charge voltage the capacity contained within the cell is 95 percent. Hence, allowing the cell to slowly complete its charge takes advantage of the larger capacity of the lithium cells.
1.0
0.5
CONSTANT CURRENT
CONSTANT VOLTAGE
1.0 TIME (HOURS)
2.0
Vov OPEN-CIRCUIT CELL VOLTAGE (V)
4.0
Point B
3.0
1.0 TIME (HOURS)
2.0
SL01554
Figure 7. Lithium cell charging curves.
2001 Oct 03
7
Philips Semiconductors
Product data
One-cell Lithium-ion battery protection with over/undercharge and overcurrent protection
NE57600
Over-voltage Threshold
Hysteresis
Over-voltage time delay
Undervoltage Threshold
Cell Voltage Dead Time
tDLY(OV) VOLTAGE
CF Voltage Over-discharge time delay
DF Voltage
VM Voltage
GND Level Excess Discharge Current Mode
Charge Mode
Discharge Mode
Discharge Mode Charge Mode
Excess Discharge Mode
SL01555
Figure 8. Timing diagram.
2001 Oct 03
8
Philips Semiconductors
Product data
One-cell Lithium-ion battery protection with over/undercharge and overcurrent protection
NE57600
APPLICATION INFORMATION
The NE57600 drives the series N-Channel MOSFETs to states determined by the cell's voltage and the battery pack load current. During normal operation, both the discharge and charge MOSFETs are ON, allowing bidirectional current flow. If the battery pack is being charged, and the cell's voltage exceeds the overvoltage threshold, then the charge MOSFET is turned OFF. The cell's voltage must fall lower than the overvoltage hysteresis voltage (VOV(Hyst)) before the charge MOSFET is again turned ON. If the battery pack is being discharged and the undervoltage threshold (VUV(Th)) is exceeded, then the discharge MOSFET is turned OFF. It will not turn back ON until a charger is applied to the pack's external terminals AND the cell's voltage rises above the undervoltage hysteresis voltage (VUV(Hyst)). When the battery pack is being discharged, if the load current causes the voltage across the discharge MOSFET to exceed the
overcurrent threshold voltage (VOC(TH)), then the discharge MOSFET is turned OFF after a fixed 7-18 ms delay. If short-circuit is placed across the pack's terminals, then the discharge MOSFET is turned OFF after a 100-300 ms delay to avoid damaging the MOSFETs.
The R-C filter on the VCC pin
An R-C filter is needed on the VCC pin, primarily to shield the IC from electrostatic energy and spikes on the terminals of the battery pack. A secondary need is during the occurrence of a short-circuit across the battery pack terminals. Here, the Li-ion cell voltage could collapse and cause the IC to enter an unpowered state. The R-C filter provides power during the first instant of the short circuit, allowing the IC to turn OFF the discharge MOSFET before the IC loses power. The R-C filter also filters any voltage noise caused by noisy load current. The values shown in Figure 9 are adequate for these purposes.
VCC VCC 2 OV REF OV DEADTIME CONTROL
VCC
NE57600
UV REF
4
CF
3 CHARGER DETECTOR VCC
CDLY
GND 5
VM
1 OC REF
UV DEADTIME CONTROL
6
DF
SL01556
Figure 9. Functional diagram.
V+ 330
+
VCC
2
CDLY Li-ION CELL 1.0 F 1.0 F
3
NE57600
1
VM
CHARGER OR LOADER GND 5 DF 6 CF 4 4.7 k 910 k
-
V- DISCHARGE FET CHARGE FET
SL01557
Figure 10. Typical application circuit. 2001 Oct 03 9
Philips Semiconductors
Product data
One-cell Lithium-ion battery protection with over/undercharge and overcurrent protection
NE57600
FET STATUS FOR NORMAL AND ABNORMAL CONDITIONS
Operating Mode and Charging Condition Normal (charging or discharging) Overcharge (charging) Overcharge (discharging) Overdischarge (discharging) Overdischarge (charging) Overcurrent (charging or discharging) Normal mode: Charge FET (CF) ON OFF ON OFF ON OFF Discharge FET (DF) ON ON ON OFF ON OFF
Selecting the Optimum MOSFETs
For a single-cell battery pack, a logic-level MOSFET should be used. These MOSFETs have turn-on thresholds of 0.9 V and are considered full-on at 4.5 V VGS. Some problem may be encountered in not having enough gate voltage to fully turn-ON the series MOSFETs over the battery pack entire operating voltage. If one deliberately selects an N-Channel MOSFET with a much greater current rating, a lower RDS(on) over the entire range can be attained. The MOSFETs should have a voltage rating greater than 20 V and should have a high avalanche rating to survive any spikes generated across the battery pack terminals. The current rating of the MOSFETs should be greater than four times the maximum "C-rating" of the cells. The current rating, though, is more defined by the total series resistance of the battery pack. The total resistance of the battery pack is given by Equation 1. Rbat(tot) = RDS(on) + Rcell (Equation 1)
Overcharge mode: Overdischarge mode: Overcurrent mode:
Overdischarge detection voltage < battery voltage overcharge detection voltage Overdischarge detection voltage > battery voltage Discharge current > overcurrent detection level voltage between VM and GND = discharge current x FET ON resistance (discharge or charge FET)
The total pack resistance is typically determined by the system requirements. The total pack resistance directly determines how much voltage droop will occur during pulses in load current. Another consideration is the forward-biased safe operating area of the MOSFET. During a short-circuit, the discharge current can easily reach 10-15 times the "C-rating" of the cells. The MOSFET must survive this current prior to the discharge MOSFET can be turned OFF. So having an FBSOA envelope that exceeds 20 amperes for 5 ms would be safe.
PACKING METHOD
GUARD BAND TAPE REEL ASSEMBLY
TAPE DETAIL
COVER TAPE
CARRIER TAPE
BARCODE LABEL
BOX
SL01305
Figure 11. Tape and reel packing method.
2001 Oct 03
10
Philips Semiconductors
Product data
One-cell Lithium-ion battery protection with over/undercharge and overcurrent protection
NE57600
SOT-26A: plastic small outline package; 6 leads; body width 1.8 mm
6
1.15
1.2 1.0
0.025
0.55 0.41
0.22 0.08
3.00 2.70
1.70 1.50
0.55 0.35
SOT-26A
2001 Oct 03
11
Philips Semiconductors
Product data
One-cell Lithium-ion battery protection with over/undercharge and overcurrent protection
NE57600
Data sheet status
Data sheet status [1] Objective data Preliminary data Product status [2] Development Qualification Definitions This data sheet contains data from the objective specification for product development. Philips Semiconductors reserves the right to change the specification in any manner without notice. This data sheet contains data from the preliminary specification. Supplementary data will be published at a later date. Philips Semiconductors reserves the right to change the specification without notice, in order to improve the design and supply the best possible product. This data sheet contains data from the product specification. Philips Semiconductors reserves the right to make changes at any time in order to improve the design, manufacturing and supply. Changes will be communicated according to the Customer Product/Process Change Notification (CPCN) procedure SNW-SQ-650A.
Product data
Production
[1] Please consult the most recently issued data sheet before initiating or completing a design. [2] The product status of the device(s) described in this data sheet may have changed since this data sheet was published. The latest information is available on the Internet at URL http://www.semiconductors.philips.com.
Definitions
Short-form specification -- The data in a short-form specification is extracted from a full data sheet with the same type number and title. For detailed information see the relevant data sheet or data handbook. Limiting values definition -- Limiting values given are in accordance with the Absolute Maximum Rating System (IEC 60134). Stress above one or more of the limiting values may cause permanent damage to the device. These are stress ratings only and operation of the device at these or at any other conditions above those given in the Characteristics sections of the specification is not implied. Exposure to limiting values for extended periods may affect device reliability. Application information -- Applications that are described herein for any of these products are for illustrative purposes only. Philips Semiconductors make no representation or warranty that such applications will be suitable for the specified use without further testing or modification.
Disclaimers
Life support -- These products are not designed for use in life support appliances, devices or systems where malfunction of these products can reasonably be expected to result in personal injury. Philips Semiconductors customers using or selling these products for use in such applications do so at their own risk and agree to fully indemnify Philips Semiconductors for any damages resulting from such application. Right to make changes -- Philips Semiconductors reserves the right to make changes, without notice, in the products, including circuits, standard cells, and/or software, described or contained herein in order to improve design and/or performance. Philips Semiconductors assumes no responsibility or liability for the use of any of these products, conveys no license or title under any patent, copyright, or mask work right to these products, and makes no representations or warranties that these products are free from patent, copyright, or mask work right infringement, unless otherwise specified.
Contact information
For additional information please visit http://www.semiconductors.philips.com. Fax: +31 40 27 24825
(c) Koninklijke Philips Electronics N.V. 2001 All rights reserved. Printed in U.S.A. Date of release: 10-01
For sales offices addresses send e-mail to: sales.addresses@www.semiconductors.philips.com.
Document order number:
9397 750 08981
Philips Semiconductors
2001 Oct 03 12


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