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PDF NCP1550 Data sheet ( Hoja de datos )

Número de pieza NCP1550
Descripción 600 kHz PWM/PFM Step-Down DC-DC Controller
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NCP1550
600 kHz PWM/PFM
Step−Down DC−DC
Controller
The NCP1550 is a monolithic micropower high frequency
voltage mode step−down controller IC, specially designed for battery
operated hand−held electronic products. With appropriate external
P−type MOSFET, the device can provide up to 2.0 A loading
current with high conversion efficiency. The device operates in
Constant−Frequency PWM mode at normal operation, that ensures
low output ripple noise, and which will automatically switch to PFM
mode at low output loads for higher efficiency. Additionally,
value−added features of Chip Enable to reduce IC Off−State current
and integrated feedback resistor network, make it the best choice for
portable applications. The device is designed to operate for voltage
regulation with minimum external components and board space. This
device is available in a TSOP−5 package with six standard output
voltage options.
Features
Pb−Free Packages are Available
High Efficiency 92%, Typical
Low Quiescent Bias Current of 50 mA (Typical at PFM Mode with
No Load)
Output Voltage Options from 1.8 V to 3.3 V with High Accuracy
$2.0%
Low Output Voltage Ripple, 50 mV, Typical
PWM Switching Frequency at 600 kHz
Automatic PWM/PFM Switchover at Light Load Condition
Very Low Dropout Operation, 100% Max. Duty Cycle
Chip Enable Pin with On−Chip 150 nA Pullup Current Source
Low Shutdown Current, 0.3 mA, Typical
Input Voltage Range from 2.45 V to 5.5 V
Built−in Soft−Start
Internal Undervoltage Lockout (UVLO) Protection
Low Profile and Minimum External Components
Micro Miniature TSOP−5 Package
Typical Applications
Personal Digital Assistant (PDA)
Camcorders and Digital Still Camera
Hand−Held Instrument
Distributed Power System
Computer Peripheral
Conversion from Four NiMH or NiCd or One Lithium−ion Cells to
3.3 V/1.8 V
http://onsemi.com
5
1
MARKING
DIAGRAM
TSOP−5
SN SUFFIX
CASE 483
xxxYW
xxx = Device Code
Y = Year
W = Work Week
PIN CONNECTIONS
CE 1
5 VIN
GND 2
VOUT 3
4 EXT
(Top View)
ORDERING INFORMATION
See detailed ordering and shipping information in the package
dimensions section on page 16 of this data sheet.
© Semiconductor Components Industries, LLC, 2004
September, 2004 − Rev. 6
1
Publication Order Number:
NCP1550/D

1 page




NCP1550 pdf
NCP1550
100
VIN = 4.0 V
80
60
TYPICAL OPERATING CHARACTERISTICS
5.0 V
100
VIN = 3.0 V
80
4.0 V
60
5.0 V
40
20
0
1
NCP1550SN33T1
L = 3.3 mH
CIN = 33 mF
COUT = 33 mF
M = NTGS3441T1
SD = MBRM120LT3
10 100 1000
ILOAD, OUTPUT LOADING CURRENT (mA)
Figure 3. Efficiency versus Load Current
40
20
0
1
NCP1550SN25T1
L = 5.6 mH
CIN = 33 mF
COUT = 33 mF
M = NTGS3441T1
SD = MBRM120LT3
10 100 1000
ILOAD, OUTPUT LOADING CURRENT (mA)
Figure 4. Efficiency versus Load Current
100
VIN = 3.0 V
4.0 V
80
60 5.0 V
40
20
0
1
NCP1550SN18T1
L = 6.8 mH
CIN = 33 mF
COUT = 33 mF
M = NTGS3441T1
SD = MBRM120LT3
10 100 1000
ILOAD, OUTPUT LOADING CURRENT (mA)
Figure 5. Efficiency versus Load Current
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NCP1550 arduino
NCP1550
(VIN = 5.0 V, ILOAD = 100 mA to 1.0 A, L = 5.6 mH,
COUT = 33 mF)
Upper Trace: Output Voltage Ripple, 100 mV/Division
Lower Trace: Load Current, ILOAD, 500 mA/Division
Figure 27. Load Transient Response for
VOUT = 2.5 V
2.0
(VIN = 5.0 V, ILOAD = 100 mA to 1.0 A, L = 6.8 mH,
COUT = 33 mF)
Upper Trace: Output Voltage Ripple, 100 mV/Division
Lower Trace: Load Current, ILOAD, 500 mA/Division
Figure 28. Load Transient Response for
VOUT = 1.8 V
70
1.6
3.3 V
60
1.2 2.5 V
0.8
1.8 V
0.4
0
−50 −25
0
25 50 75 100
TA, AMBIENT TEMPERATURE (°C)
Figure 29. Off−Stage Current versus Ambient
Temperature
700
50
2.5 V
3.3 V
1.8 V
40
30 VIN = 5.0 V
VCE = 5.0 V
20
−50 −25
0
25
50
75 100
TA, AMBIENT TEMPERATURE (°C)
Figure 30. Operating Current versus Ambient
Temperature
450
650
2.5 V
400
1.8 V
3.3 V
600 350 2.5 V
550 3.3 V
500
450
−50
VIN = 5.0 V
−25 0
25 50 75
TA, AMBIENT TEMPERATURE (°C)
100
Figure 31. Oscillator Frequency versus Ambient
Temperature
300
1.8 V
250
200
−50
VIN = 5.0 V
−25 0 25 50 75
TA, AMBIENT TEMPERATURE (°C)
100
Figure 32. PWM/PFM Switch ON Time Threshold
versus Ambient Temperature
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