NCP370 ON Semiconductor, NCP370 Datasheet

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NCP370

Manufacturer Part Number
NCP370
Description
Positive and Negative Overvoltage Protection
Manufacturer
ON Semiconductor
Datasheet

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Part Number:
NCP370MUAITXG
Manufacturer:
ON Semiconductor
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Part Number:
NCP370MUAITXG
Quantity:
100
NCP370
Positive and Negative
Overvoltage Protection
with Internal Low R
N-MOSFETs and Reverse
Charge Control Pin
device. Two main modes are available by setting logic pins. First mode
is Direct Mode from Wall−Adapter to the system. In this mode the
system is both positive and negative over−voltage protected up to
+28 V and down to −28 V. The wall adapter (or AC/DC charger) is
disconnected from the system if the input voltage exceeds the
overvoltage (OVLO) or undervoltage (UVLO) thresholds. At power
up, the V
threshold.
allows an external accessory to be powered by the system battery or
boost converter. Here the external accessory would be connected to the
device input (bottom connector of system) and the device battery
would be at the device output. In this case overcurrent protection is
activated to prevent accessory faults and battery discharge. Thanks to
the NCP370 using an internal NMOS, the system cost and the PCB
area of the application board are minimized.
alerts the system that a fault has occurred.
bypassed with a 1 mF or larger capacitor.
Features
© Semiconductor Components Industries, LLC, 2008
December, 2008 − Rev. 2
The NCP370 is an overvoltage, overcurrent and reverse control
The second mode (see Tables 1 & 2), called the Reverse Mode,
The NCP370 provides a negative going flag (FLAG) output which
In addition, the device has ESD−protected input (15 kV Air) when
Alert FLAG Output
Compliance to IEC61000−4−2 (Level 4)
ESD Ratings: Machine Model = B
Human Body Model = 2
12 Lead TLLGA 3x3 mm Package
This is a Pb−Free Device
Overvoltage Protection Up to 28 V
Negative Voltage Protection Down to −28 V
Reverse Charge Control: REV
Direct Charge Control: DIR
Overcurrent Protection
Thermal Shutdown
On−chip Low R
Overvoltage Lockout (OVLO)
Undervoltage Lockout (UVLO)
Soft−Start
out
8 kV (Contact)
15 kV (Air)
turns on 30 ms after the V
DS(on)
NMOS Transistors: Typical 130 mW
in
exceeds the undervoltage
ON
1
Typical Applications
Cell Phones
Camera Phones
Digital Still Cameras
Personal Digital Applications
MP3 Players
See detailed ordering and shipping information in the package
dimensions section on page 10 of this data sheet.
CASE 513AK
12 PIN LLGA
GND
(Note: Microdot may be in either location)
RES
RES
RES
MU SUFFIX
IN
IN
A
L
Y
W
G
1
ORDERING INFORMATION
1
2
3
4
5
6
http://onsemi.com
= Assembly Location
= Wafer Lot
= Year
= Work Week
= Pb−Free Package
(Top View)
NCP370
Publication Order Number:
www.DataSheet4U.com
MARKING
DIAGRAM
ALYWG
NCAI
10
12
370
11
9
8
7
G
NCP370/D
NC
OUT
FLAG
DIR
REV
Ilim

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NCP370 Summary of contents

Page 1

... In this case overcurrent protection is activated to prevent accessory faults and battery discharge. Thanks to the NCP370 using an internal NMOS, the system cost and the PCB area of the application board are minimized. The NCP370 provides a negative going flag (FLAG) output which alerts the system that a fault has occurred. In addition, the device has ESD− ...

Page 2

... NCP370 Wall Adapter 1mF IN OUT 3 10 FLAG GND 4 9 RES DIR 8 5 RES REV 6 7 RES Ilim R limit INPUT DIR 10k Charger FLAG DIR REV 4.7mF GND Figure 1. Typical Application Circuit FUNCTIONAL BLOCK DIAGRAM Gate Driver and Reverse OCP ...

Page 3

... Reverse Charge Control Pin. In combination with DIR, the internal N−MOSFETs are turned on if Battery is applied on the OUT pin (See Tables 1 & 2). In reverse mode, the internal overcurrent protection is activated. When reverse mode is disabled, the NCP370 current consumption, into OUT pin, is drastically decreased to limit battery discharge. ...

Page 4

... Characteristics Symbols Input Voltage Range Input Voltage Vin Output Voltage Range Undervoltage Lockout Threshold UVLO Undervoltage Lockout Hysteresis UVLO Over voltage Lockout Threshold OVLO NCP370MUAITXG Overvoltage Lockout Hysteresis OVLO Over System Voltage Lockout OVLO Overvoltage Lockout Hysteresis OVLO Resistance R in ...

Page 5

... DIR = low and REV = low. The R higher during this mode allowing to handle few 10 mA This additional comparator allows to put higher input voltage (OVLO = 8.27 V typical) on the NCP370 during test production sequence (I.E: One Time Programming of the cell phone, PDA). This parameter is 25°C guaranteed only. ...

Page 6

The FLAG pin goes low as soon the input voltage exceeds the OVLO threshold or falls below the UVLO threshold. When the V level recovers normal condition, FLAG goes in high after a time delay, t (see Figure 3), following ...

Page 7

V in ton rev V out FLAG DIR REV micro−controller Table 1. FLAG TABLE DIR REV 1.5 < V < UVLO > OVLO UVLO < V < OVLO ...

Page 8

... To access to the reverse mode, DIR pin must be tied high (> 1.2) and REV must be tied high to low (< 0.55 V). In this case, the core of the NCP370 will be supplied by the battery, with a 2.5 V minimum voltage and 5.5 V maximum voltage. In this reverse state, both OCP and thermal modes are available ...

Page 9

... ESD Tests The NCP370 conforms to the IEC61000−4−2, level 4 on the Input pin (I.E Murata GRM188R61E105KA12D) must be placed close to the IN pins. If the IEC61000−4−2 is not a requirement, a 100 nF/25 V must be placed between IN and GND. The above configuration supports 15 kV (Air) and 8 kV (Contact) at the input per IEC61000− ...

Page 10

... R and Dropout DS(on) The NCP370 includes two internal low R N−MOSFETs to protect the system, connected on OUT pin, from overvoltage, negative voltage and reverse current protection. During normal operation, the R characteristics of the N−MOSFETs give rise to low losses on V pin. out ORDERING INFORMATION Device NCP370MUAITXG † ...

Page 11

... L 12X BOTTOM VIEW The products described herein (NCP370), may be covered by one or more U.S. patents. There may be other patents pending. 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. “ ...

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