NCP1236AD100R2G ON Semiconductor, NCP1236AD100R2G Datasheet

no-image

NCP1236AD100R2G

Manufacturer Part Number
NCP1236AD100R2G
Description
IC CTLR CURR MODE 100KHZ 7-SOIC
Manufacturer
ON Semiconductor
Datasheet

Specifications of NCP1236AD100R2G

Input Voltage
28V
No. Of Outputs
1
Voltage Regulator Case Style
SOIC
No. Of Pins
8
Operating Temperature Range
-40°C To +125°C
Svhc
No SVHC (20-Jun-2011)
Base Number
1236
Rohs Compliant
Yes
Lead Free Status / Rohs Status
Lead free / RoHS Compliant

Available stocks

Company
Part Number
Manufacturer
Quantity
Price
Part Number:
NCP1236AD100R2G
Manufacturer:
ON Semiconductor
Quantity:
1 250
Part Number:
NCP1236AD100R2G
Manufacturer:
ON/安森美
Quantity:
20 000
NCP1236
Fixed Frequency Current
Mode Controller for Flyback
Converters
featuring Dynamic Self−Supply (DSS). This device is pin−to−pin
compatible with the previous NCP12xx families.
supply and the V
source to supply the controller during transients.
efficiency in light load condition while still achieving very low
standby power consumption. Internal frequency jittering, ramp
compensation, and a versatile latch input make this controller an
excellent candidate for converters where components cost is the key
constraints.
combines a start−up current source and a brown−out detector able to
sense the input voltage either from the rectified ac line or the dc
filtered bulk voltage. The high voltage sensing circuitry is used for the
overpower protection purposes as well. Overpower protection,
overload protection, and next protective features increases safety level
of the final application.
is well controlled over the entire temperature range (−40°C to
+125°C).
Features
© Semiconductor Components Industries, LLC, 2011
March, 2011 − Rev. 1
The NCP1236 is a new fixed−frequency current−mode controller
The DSS function greatly simplifies the design of the auxiliary
Due to frequency foldback, the controller exhibits excellent
In addition, the controller includes a new high voltage circuitry that
Finally, due to a careful design, the precision of critical parameters
Compensation
Light Load and Standby Conditions
Auto−Recovery (option B) Operation, Shortened Overload Timer for
Increased Safety (options C and D), (see all options on page 2)
High−voltage Current Source with Brown−Out
detection and Dynamic Self−Supply, Simplifying the
Design of the V
Frequency Modulation for Softened EMI Signature,
including during Frequency Foldback mode
Adjustable Overpower Compensation
Latch−off Input for Severe Fault Conditions, Allowing
Direct Connection of an NTC for Overtemperature
Protection (OTP)
V
$500 mA Peak Source / Sink Current Drive Capability
4.0 ms Soft−Start
Fixed−Frequency Current−Mode Operation with Built−In Ramp
65 kHz or 100 kHz Oscillator Frequency
Frequency Foldback then Skip Mode for Maximized Performance in
Timer−Based Overload Protection with Latched (option A) or
CC
Operation up to 28 V, with Overvoltage Detection
CC
CC
capacitor by activating the internal startup current
Capacitor
1
Typical Applications
Internal Thermal Shutdown
Pin−to−Pin Compatible with the Existing NCP12xx
Series
These Devices are Pb−Free, Halogen Free/BFR Free
and are RoHS Compliant
AC−DC Adapters for Notebooks, LCD, and Printers
Offline Battery Chargers
Consumer Electronic Power Supplies
Auxiliary/Housekeeping Power Supplies
See detailed ordering and shipping information in the package
dimensions section on page 33 of this data sheet.
CASE 751U
ORDERING INFORMATION
36Xff = Specific Device Code
A
L
Y
W
G
Latch
GND
SOIC−7
CS
FB
PIN CONNECTIONS
http://onsemi.com
X = A, B, C or D
ff = 65 or 100
= Assembly Location
= Wafer Lot
= Year
= Work Week
1
2
3
4
= Pb−Free Package
(Top View)
Publication Order Number:
8
1
8
6
5
MARKING
DIAGRAM
ALYWX
HV
V
DRV
36Xff
CC
G
NCP1236/D

Related parts for NCP1236AD100R2G

NCP1236AD100R2G Summary of contents

Page 1

NCP1236 Fixed Frequency Current Mode Controller for Flyback Converters The NCP1236 is a new fixed−frequency current−mode controller featuring Dynamic Self−Supply (DSS). This device is pin−to−pin compatible with the previous NCP12xx families. The DSS function greatly simplifies the design of the ...

Page 2

VIN (dc) LATCH FB CS GND Figure 1. Flyback Converter Application Using the NCP1236 OPTIONS Part Option NCP1236 PIN FUNCTION DESCRIPTION Pin No Pin Name Function 1 LATCH Latch−Off Input 2 FB ...

Page 3

SIMPLIFIED INTERNAL BLOCK SCHEMATIC − NTC V I OVP NTC − Latch + + OTP V clamp V FB(ref sample + − I ...

Page 4

MAXIMUM RATINGS Supply Pin (pin 6) (Note 2) Voltage range Current range High Voltage Pin (pin 8) (Note 2) Voltage range Current range Driver Pin (pin 5) (Note 2) Voltage range Current range All other pins (Note 2) Voltage range ...

Page 5

ELECTRICAL CHARACTERISTICS (For typical values unless otherwise noted) CC Characteristics HIGH VOLTAGE CURRENT SOURCE Minimum voltage for current source operation Current flowing out of V pin Off−state leakage current V ...

Page 6

ELECTRICAL CHARACTERISTICS (For typical values unless otherwise noted) CC Characteristics CURRENT SENSE Input Bias Current V CS Maximum internal current V FB setpoint Propagation delay from V V Ilimit CS detection to DRV off Leading ...

Page 7

ELECTRICAL CHARACTERISTICS (For typical values unless otherwise noted) CC Characteristics SKIP−CYCLE MODE Feedback voltage thresholds for V FB skip mode V FB LATCH−OFF INPUT High threshold V Latch Low threshold V Latch Current source for ...

Page 8

TYPICAL PERFORMANCE CHARACTERISTICS 40.00 38.00 36.00 34.00 32.00 30.00 28.00 26.00 24.00 22.00 20.00 −50 − TEMPERATURE (°C) Figure 3. Minimum Current Source Operation V HV(min) 120 115 110 105 100 95 90 −50 − ...

Page 9

TYPICAL PERFORMANCE CHARACTERISTICS 110 100 −50 − TEMPERATURE (°C) Figure 9. Propagation Delay −50 − TEMPERATURE (°C) ...

Page 10

TYPICAL PERFORMANCE CHARACTERISTICS −50 − TEMPERATURE (°C) Figure 15. Maximum Duty Cycle D 1.50 1.45 1.40 1.35 1.30 1.25 1.20 −50 − TEMPERATURE ...

Page 11

TYPICAL PERFORMANCE CHARACTERISTICS 150 145 140 135 130 125 120 115 110 −50 − TEMPERATURE (°C) Figure 21. Maximum Overpower Compensating Current I OPC(365 Pin 2.40 2.35 2.30 2.25 2.20 2.15 2.10 2.05 2.00 1.95 ...

Page 12

TYPICAL PERFORMANCE CHARACTERISTICS 2.80 2.70 2.60 2.50 2.40 2.30 2.20 2.10 2.00 −50 − TEMPERATURE (°C) Figure 27. Latch Pin Voltage V Pin is Sinking 1 mA) 220 210 200 190 180 170 160 150 140 −50 ...

Page 13

... version. • High Voltage Start−Up Current Source with Brown−Out Detection: Due to ON Semiconductor’s Very High Voltage technology, the NCP1236 can be directly connected to the high input voltage. The start−up current source ensures a clean start−up and the Dynamic Self− ...

Page 14

Typical Operation • Start−up: The HV start−up current source ensures the charging of the V capacitor up to the start−up CC threshold V , until the input voltage is high CC(on) enough (above allow the switching to ...

Page 15

High−Voltage Current Source with Built−in Brown−out Detection The NCP1236 HV pin can be connected either to the rectified bulk voltage the ac line through a rectifier. Start−up HV VCC Figure 30. HV Start−up Current Source Functional Schematic At ...

Page 16

HV(start) V HV(min CC(on) V CC(min) V CC(inhibit) DRV For safety reasons, the start−up current is lowered when V is below reduce the power dissipation in CC CC(inhibit) case the V ...

Page 17

HV stop Brown-out or AC OVP detected CC(on) V CC(min) DRV When V crosses the V threshold, the controller HV HV(start) can start immediately. When it crosses V Waits next V before CC(on) starting Figure 32. Brown−out ...

Page 18

HV(start) V HV(stop) Starts at next V DRV CC(ON) Figure 33. AC Input Brown−out Timing Diagram Oscillator with Maximum Duty Cycle and Frequency Jittering The NCP1236 includes an oscillator that sets the switching frequency with an accuracy ...

Page 19

CURRENT−MODE CONTROL WITH OVERPOWER COMPENSATION AND SOFT−START Current sensing NCP1236 is a current−mode controller, which means that the FB voltage sets the peak current flowing in the inductance and the MOSFET. This is done through a PWM comparator: the current ...

Page 20

FB(fault) Soft-start ramp V ILIM CS Setpoint V ILIMI Under some conditions, like a winding short−circuit for instance, not all the energy stored during the on time is transferred to the output during the off time, even ...

Page 21

LIMIT High Line Figure 38. Line Compensation for True Overpower Protection To compensate this and have an accurate overpower protection, an offset proportional to the input voltage is added on the CS signal by turning on an ...

Page 22

I OPC Figure 40. Overpower Compensation Current Relation to Feedback Voltage and Input Voltage HV(stop) Sample/reset signal HV One shot timer starts Peak detector Reset I Sample OPC Sample V V FB(OPCE) FB(OPCF timer timer ...

Page 23

HV(stop Peak detector I OPC Sample Feedback with Slope Compensation The ratio from the FB voltage to the current sense setpoint is 5, meaning that the FB voltage corresponding order ...

Page 24

Overcurrent protection with Fault timer When an overcurrent occurs on the output of the power supply, the FB loop asks for more power than the controller can deliver, and the CS setpoint reaches V event occurs, an internal t timer ...

Page 25

Overcurrent Output Load applied Max Load Fault Flag starts CC(on) V CC(min) DRV Fault timer t fault t fault Figure 45. Autorecovery Timer−Based Protection Mode In the latched version, the controller can restart only if a brown−out ...

Page 26

Output Load Overcurrent applied Max Load Fault Flag Fault timer starts CC(on) V CC(min) DRV Fault timer t fault Figure 46. Latched Timer−Based Overcurrent Protection t fault http://onsemi.com 26 No restart when fault disappears time time time ...

Page 27

Frequency Foldback In order to improve the efficiency in light load conditions, the frequency of the internal oscillator is linearly reduced from its nominal value down to f OSC(min) foldback starts when the voltage on FB pin goes below f ...

Page 28

FB(fold) V skip(out) V skip(in) Enters skip DRV Latch−off Input VDD I NTC Latch clamp Soft−start The Latch pin is dedicated to the latch−off function: it includes two levels of detection that define a ...

Page 29

DRV switching starts only allowed; whereas the Low latch (typically sensing an overtemperature) is taken into account only after the soft−start is finished. In addition, the NTC current is doubled to I the soft−start period, ...

Page 30

HV Start−up Current Source No TSD TSD Stop Figure 52. HV Start−up Current Source State Diagram STATE DIAGRAMS start1 V < CC(inhibit) TSD TSD V < CC(min) TSD http://onsemi.com 30 > V CC(inhibit) ...

Page 31

Controller Operation (Latched Version: A Option) • Brown−out • TSD Stopped • Brown−out • VCC reset Latch • High Latch • Low Latch • V > CC(ovp) Figure 53. Controller Operation State Diagram (Latched Protection) V > V ...

Page 32

Controller Operation (Autorecovery Version: B Option) • t counting autorec • Brown−out • TSD Stopped • Brown− out • VCC reset Latch • High Latch • Low Latch • V > CC(ovp) Figure 54. Controller Operation State Diagram ...

Page 33

... Table 1. ORDERING INFORMATION Part No. NCP1236AD65R2G NCP1236AD100R2G NCP1236BD65R2G NCP1236BD100R2G NCP1236CD65R2G (Note 7) NCP1236CD100R2G (Note 7) NCP1236DD65R2G NCP1236DD100R2G (Note 7) †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. 7. Contact your ON Semiconductor Sales Representative. These parts will be released upon customer request. ...

Page 34

... M S *For additional information on our Pb−Free strategy and soldering details, please download the ON Semiconductor Soldering and Mounting Techniques Reference Manual, SOLDERRM/D. The product described herein (NCP1236) may be covered by one or more of the following U.S. patents: 5,073,850, 6,271,735, 6,362,067, 6,385,060, 6,597,221, 6,633,193, 6,587,351, 6,940,320. There may be other patents pending. ...

Related keywords