NCP1230 ON Semiconductor, NCP1230 Datasheet

no-image

NCP1230

Manufacturer Part Number
NCP1230
Description
Fixed Frequency Controller Featuring Pfc Go To Standby Function
Manufacturer
ON Semiconductor
Datasheet

Available stocks

Company
Part Number
Manufacturer
Quantity
Price
Part Number:
NCP1230AD65R2
Manufacturer:
ICS
Quantity:
78
Part Number:
NCP1230AD65R2
Manufacturer:
ON
Quantity:
20 000
Part Number:
NCP1230AP100
Manufacturer:
MAX
Quantity:
4 733
Part Number:
NCP1230AP133
Manufacturer:
ON
Quantity:
3 146
Part Number:
NCP1230AP65
Manufacturer:
ON
Quantity:
114
Part Number:
NCP1230D100R2G
Manufacturer:
ON/安森美
Quantity:
20 000
Part Number:
NCP1230D133R2G
Manufacturer:
Etron
Quantity:
2 023
Part Number:
NCP1230D133R2G
Manufacturer:
ON/安森美
Quantity:
20 000
Part Number:
NCP1230D165R2G
Manufacturer:
ON/安森美
Quantity:
20 000
Part Number:
NCP1230D65R2G
Manufacturer:
ON/安森美
Quantity:
20 000
Part Number:
NCP1230D65R2G
0
Company:
Part Number:
NCP1230D65R2G
Quantity:
25 000
NCP1230
Low−Standby Power High
Performance PWM
Controller
standby power in medium−to−high power Switched−Mode Power
Supplies such as notebook adapters, off−line battery chargers and
consumer electronics equipment. Housed in a compact 8−pin package
(SOIC−8, SOIC−7, or PDIP−7), the NCP1230 contains all needed
control functionality to build a rugged and efficient power supply. The
NCP1230 is a current mode controller with internal ramp
compensation. Among the unique features offered by the NCP1230 is
an event management scheme that can disable the front−end PFC
circuit during standby, thus reducing the no load power consumption.
The NCP1230 itself goes into cycle skipping at light loads while
limiting peak current (to 25% of nominal peak) so that no acoustic
noise is generated. The NCP1230 has a high−voltage startup circuit
that eliminates external components and reduces power consumption.
used for OVP protection. This latch is triggered by pulling the CS pin
above 3.0 V and can only be reset by pulling V
overload protection, internal 2.5 ms soft−start, internal leading edge
blanking, internal frequency dithering for low EMI are some of the
other important features offered by the NCP1230.
Features
Typical Applications
© Semiconductor Components Industries, LLC, 2006
November, 2006 − Rev. 8
The NCP1230 represents a major leap towards achieving low
The NCP1230 also features an internal latching function that can be
Power
Current−Mode Operation with Internal Ramp Compensation
Internal High−Voltage Startup Current Source for Loss−Less Startup
Extremely Low No−Load Standby Power
Skip−Cycle Capability at Low Peak Currents
Direct Connection to PFC Controller for Improved No−Load Standby
Internal 2.5 ms Soft−Start
Internal Leading Edge Blanking
Latched Primary Overcurrent and Overvoltage Protection
Short−Circuit Protection Independent of Auxiliary Level
Internal Frequency Jittering for Improved EMI Signature
+500 mA/−800 mA Peak Current Drive Capability
Available in Three Frequency Options: 65 kHz, 100 kHz, and 133 kHz
Direct Optocoupler Connection
SPICE Models Available for TRANsient and AC Analysis
Pb−Free Packages are Available
High Power AC−DC Adapters for Notebooks, etc.
Offline Battery Chargers
Set−Top Boxes Power Supplies, TV, Monitors, etc.
CC
to ground. True
1
See detailed ordering and shipping information in the ordering
information section on page 4 of this data sheet.
8
8
8
xxx
y
y
A
L
Y, YY
W, WW
G
G
(Note: Microdot may be in either location)
1
1
PFC Vcc
1
ORDERING INFORMATION
GND
PIN CONNECTIONS
CS
http://onsemi.com
FB
= Device Code: 65, 100, 133
= Device Code: 6, 1, 1
= Device Code: 5, 0,
= Assembly Location
= Wafer Lot
= Year
= Work Week
= Pb−Free Package
= Pb−Free Package
PDIP−7 VHVIC
SOIC−8 VHVIC
CASE 626B
1
CASE 751U
D1 SUFFIX
P SUFFIX
CASE 751
D SUFFIX
SOIC−7
Publication Order Number:
8
HV
V
DRV
CC
1
8
1
MARKING
DIAGRAM
8
1
3
1230Pxxx
YYWWG
NCP1230/D
ALYWy
230Dy
ALYWG
30D16
AWL
G
G

Related parts for NCP1230

NCP1230 Summary of contents

Page 1

... PFC circuit during standby, thus reducing the no load power consumption. The NCP1230 itself goes into cycle skipping at light loads while limiting peak current (to 25% of nominal peak) so that no acoustic noise is generated. The NCP1230 has a high−voltage startup circuit that eliminates external components and reduces power consumption ...

Page 2

... V latch−off level which latches the output off until V is recycled. CC With a drive capability of +500 mA / −800 mA, the NCP1230 can drive large Qg MOSFETs. The controller accepts voltages and features a UVLO turn−off threshold of 7.7 V typical. ...

Page 3

Figure 2. Internal Circuit Architecture http://onsemi.com + + + 3 ...

Page 4

... ORDERING INFORMATION Device NCP1230D165R2G NCP1230D65R2 NCP1230D65R2G NCP1230D100R2 NCP1230D100R2G NCP1230D133R2 NCP1230D133R2G NCP1230P65 NCP1230P65G NCP1230P100 NCP1230P100G NCP1230P133 NCP1230P133G †For information on tape and reel specifications, including part orientation and tape sizes, please refer to our Tape and Reel Packaging Specifications Brochure, BRD8011/D. Symbol ...

Page 5

ELECTRICAL CHARACTERISTICS unless otherwise noted.) CC PIN8 Characteristic Supply Section (All frequency versions, otherwise noted) Turn−On Threshold Level, V Going Minimum Operating Voltage after Turn−On V Decreasing Level at ...

Page 6

ELECTRICAL CHARACTERISTICS unless otherwise noted.) CC PIN8 Characteristic Internal Oscillator Oscillation Frequency, 65 kHz Version (V Oscillation Frequency, 100 kHz Version Oscillation Frequency, 133 kHz Version Internal Modulation Swing, in Percentage of ...

Page 7

TYPICAL PERFORMANCE CHARACTERISTICS 6.0 5.8 5.6 5.4 5.2 5.0 −50 − JUNCTION TEMPERATURE (°C) J Figure 5. V Latch Threshold vs. Temperature CC 3.1 133 kHz 2.7 2.3 100 kHz 1.9 65 kHz 1.5 ...

Page 8

TYPICAL PERFORMANCE CHARACTERISTICS 22 − 0 CC(off) 21.5 21.0 20.5 20.0 19.5 19.0 −50 − JUNCTION TEMPERATURE (°C) J Figure 11. Minimum Startup Voltage vs. Temperature ...

Page 9

TYPICAL PERFORMANCE CHARACTERISTICS 800 775 750 725 700 −50 − JUNCTION TEMPERATURE (°C) J Figure 17. V vs. Temperature skip 4.0 3.5 3.0 2.5 2.0 1.5 −50 −25 0 ...

Page 10

TYPICAL PERFORMANCE CHARACTERISTICS 10 9.0 8.0 7.0 6.0 5.0 4.0 −50 − JUNCTION TEMPERATURE (°C) J Figure 23. Internal Modulation Swing vs. Temperature 280 270 260 250 240 230 ...

Page 11

... TV, and computer monitors. The NCP1230 can be connected directly to a high voltage source providing lossless startup, and eliminating external startup circuitry. In addition, the NCP1230 has a PFC_V output pin which provides the bias supply power for a Power Factor Correction controller, or other logic ...

Page 12

... Peak primary current Current sense resistor Feedback divider ratio. SkipLevel + 3V @ 25% + 0.75V where: where the power level where the NCP1230 will go into in the skip mode L = Primary inductance NCP1230 controller frequency where: Eff = the power supply efficiency − ...

Page 13

... Example assume we are using the 65 kHz version of the NCP1230 kHz the dv/dt of the ramp is 130 mV/ms. Assuming we are designing a FLYBACK converter which has a primary inductance, Lp, of 350 mH, and the SMPS has a +12 V output with a Np:Ns ratio of 1:0.1. The OFF time ...

Page 14

... If the 125 msec timer expires while the NCP1230 is in the Skip Mode, SW1 opens and the PFC_Vcc output will shut down and will not be activated until the fault goes away and the power supply resumes normal operations ...

Page 15

The latch−off phase can also be initiated, more classically, when Vcc drops below UVLO (7.7 V typical). During this fault detection method, the controller will not wait for the Regulation 12 PWM CC 7.7 V ...

Page 16

... NCP1230 immediately stops the PWM drive pulses and permanently stays latched off until the bias supply to the NCP1230 is cycled down (Vcc must drop below 4.0 V, e.g. when the user unplugs the converter from the mains). This offers the designer the flexibility to implement an externally shutdown circuit (for example for overvoltage or overtemperature conditions) ...

Page 17

Vdd 20k 55k FB 2 10V 25k (Fresh PON (OCP) Current Max I P Sense 2.5 ms Figure 40. Soft−Start is Activated during a Startup Sequence or an OCP Condition Error ...

Page 18

... When activated (165°C typically) the controller turns off the PWM Drive Output. When this occurs, Vcc will drop (the rate is dependent on the NCP1230 loading and the size of the Vcc capacitor) because the controller is no longer delivering drive pulses to the auxiliary winding charging up the Vcc capacitor. When Vcc NCP1230 offers a nominal ± ...

Page 19

S −B− −T− SEATING PLANE 0.25 (0.010 PACKAGE DIMENSIONS SOIC−7 D1 SUFFIX CASE 751U−01 ISSUE C 0.25 (0.010 ...

Page 20

... C SEATING PLANE −Z− 0.25 (0.010 *For additional information on our Pb−Free strategy and soldering details, please download the ON Semiconductor Soldering and Mounting Techniques Reference Manual, SOLDERRM/D. PACKAGE DIMENSIONS SOIC−8 D SUFFIX CASE 751−07 ISSUE ...

Page 21

... The product described herein (NCP1230), may be covered by the following U.S. patents: 6,271,735, 6,362,067, 6,385,060, 6,597,221. 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. “ ...

Related keywords