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SC1933C Datasheet(PDF) 13 Page - Power Integrations, Inc.

No. de pieza SC1933C
Descripción Electrónicos  Off-Line CV/CC QR Flyback Switcher IC with Integrated Primary Switch, Synchronous Rectification and FluxLink Feedback
PDF  28 Pages
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Fabricante Electrónico  POWERINT [Power Integrations, Inc.]
Página de inicio  http://www.powerint.com
Logo POWERINT - Power Integrations, Inc.

SC1933C Datasheet(HTML) 13 Page - Power Integrations, Inc.

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Rev. C 11/18
13
SC1933C/SC1936C
www.power.com
SR FET Operation and Selection
Although a simple diode rectifier and filter works for the output, use
of an SR FET enables the significant improvement in operating
efficiency often necessary to meet the European CoC and the U.S.
DoE energy efficiency requirements. The secondary-side controller
turns on the SR FET once the flyback cycle begins. The SR FET gate
should be tied directly to the SYNCHRONOUS RECTIFIER DRIVE pin
of the SC1933C/SC1936C IC (no additional resistors should be
connected in the gate circuit of the SR FET). The SR FET is turned
off once the V
DS of the SR FET reaches VSR(TH).
A FET with 6 mΩ R
DS(ON) is appropriate for a 20 V, 3.25 A output, and
two SR FET’s in parallel with 6 mΩ R
DS(ON) is suitable for designs rated
with a 20 V, 5 A output. The SR FET driver uses the SECONDARY
BYPASS pin for its supply rail, and this voltage is typically 4.4 V. A
FET with a high threshold voltage is therefore not suitable; SR FETs
with a threshold voltage of 1.5 V to 2.5 V are ideal although FETs with
a threshold voltage (absolute maximum) as high as 4 V may be used
provided their data sheets specify R
DS(ON) across temperature for a
gate voltage of 4.5 V.
There is a slight delay between the commencement of the flyback
cycle and the turn-on of the SR FET. During this time, the body diode
of the SR FET conducts. If an external parallel Schottky diode is
used, this current mostly flows through the Schottky diode. Once the
SC1933C/SC1936C IC detects V
SR(TH) across SR FET it turns off the SR
gate and any remaining portion of the flyback cycle is completed with
the current commutating to the body diode of the SR FET or the
external parallel Schottky diode. Use of the Schottky diode parallel
to the SR FET may provide another ~0.1% - 0.2% higher efficiency.
The voltage rating of the Schottky diode and the SR FET should be at
least 1.4 times the expected peak inverse voltage (PIV) based on the
turns ratio used for the transformer. 60 V rated FETs and diodes are
suitable for most 5 V designs that use a V
OR < 60 V, and 100 V rated
FETs and diodes are suitable for up to 20 V designs.
The interaction between the leakage reactance of the output
windings and the SR FET capacitance (COSS) leads to ringing on the
voltage waveform at the instance of voltage reversal at the winding
due to primary switch turn-on. This ringing can be suppressed using
an RC snubber connected across the SR FET. A snubber resistor in
the range of 4.7 Ω to 47 Ω may be used (higher resistance values
lead to noticeable drop in efficiency). A capacitance value of
1 nF to 2.2 nF is adequate for most designs.
Output Capacitor
Low ESR aluminum electrolytic capacitors are suitable for use with
most high frequency flyback switching power supplies though the use
of aluminum-polymer solid capacitors have gained considerable
popularity due to their compact size, stable temperature
characteristics, extremely low ESR and high RMS ripple current rating.
These capacitors enable the design of ultra-compact chargers and
adapters.
Typically, 200 mF to 300 mF of aluminum-polymer capacitance per
ampere of output current is adequate. The other factor that
influences choice of the capacitance is the output ripple. Ensure that
capacitors with a voltage rating higher than the highest output
voltage plus sufficient margin be used.
Output Voltage Feedback Circuit
The output voltage FEEDBACK pin voltage is 1.265 V [V
FB]. A voltage
divider network should be connected at the output of the power
supply to divide the output voltage such that the voltage at the
FEEDBACK pin will be 1.265 V when the output is at its desired
voltage. The lower feedback divider resistor should be tied to the
SECONDARY GROUND pin. A 330 pF (or smaller) decoupling capacitor
should be connected at the FEEDBACK pin to the SECONDARY
GROUND pin of the SC1933C/SC1936C IC. This capacitor should be
placed close to the SC1933C/SC1936C IC.
Interfacing with USB PD and Rapid Charge Controllers
A microcontroller can be used to alter the feedback voltage divider in
order to increase or decrease the output voltage. The interface IC
can also use the signal from the SC1933C/SC1936C ISENSE pin to
sense output current and provide current, power limiting or
protection features.
Figure 12. (a) Line OV Only; (b) Line UV Only.
PI-8405a-102218
D
V
R1
R2
1N4148
S
IS
VOUT
BPP
SC1933C/36C
+
(a)
(b)
PI-8406a-102218
D
V
R1
R2
6.2 V
S
IS
VOUT
BPP
SC1933C/36C
+



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