VIPER15HN STMicroelectronics, VIPER15HN Datasheet - Page 20

IC OFFLINE CONV PWM OVP 16SOIC

VIPER15HN

Manufacturer Part Number
VIPER15HN
Description
IC OFFLINE CONV PWM OVP 16SOIC
Manufacturer
STMicroelectronics
Series
VIPer™ plusr
Datasheet

Specifications of VIPER15HN

Output Isolation
Isolated
Frequency Range
200 ~ 250kHz
Voltage - Input
8.5 ~ 23.5 V
Voltage - Output
800V
Power (watts)
12W
Operating Temperature
-40°C ~ 150°C
Package / Case
8-DIP (0.300", 7.62mm), 7 Leads
Input Voltage
8.5 V to 23.5 V
Switching Frequency
225 KHz
Mounting Style
Through Hole
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
Other names
497-8737-5

Available stocks

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Quantity
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Part Number:
VIPER15HN
Quantity:
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Part Number:
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Operation description
7.6
20/40
Quasi-resonant operation
The control core of the VIPER15 is a current-mode PWM controller with a the zero current
detection circuit designed for Quasi-Resonant (QR) operation, a technique that provides the
benefits of minimum turn-on losses, low EMI emission and safe behavior in case of short-
circuit. At heavy load the converter operates in quasi-resonant mode: operation lies in
synchronizing MOSFET's turn-on to the transformer’s demagnetization by detecting the
resulting negative-going edge of the voltage across any winding of the transformer. The
system works close to the boundary between discontinuous (DCM) and continuous
conduction (CCM) of the transformer and the switching frequency will be different for
different line/load conditions. See the hyperbolic-like portion reported in
page 21
At medium/ light load, depending also from the converter input voltage, the device enters in
Valley-skipping mode. The internal oscillator, synchronized to MOSFET’s turn-on, defines
the maximum operating frequency of the converter, F
The VIPER15 is available as type ‘L’ or type ‘H’, depending from the value of F
Table 8 on page 8
F
minimization. The ‘H’ type is suitable when an extended QR operation range is a plus or the
priority is the transformer size reduction.
As the load is reduced, and the switching frequency tends to exceeds the limit F
MOSFET’s turn-on will not any more occur on the first valley but on the second one, the third
one and so on, see
piecewise linear portion in
When the load is extremely light or disconnected, the converter enters in burst mode
operation, see the relevant
frequency reduction, which can go down even to few hundred hertz, thus minimizing all
frequency-related losses and making it easier to comply with energy saving regulations or
recommendations. Being the peak current low enough, no issue of audible noise.
The above mentioned way of operation is based on the ZCD pin. This pin is the input of the
integrated ZCD circuit which allows the power section turn-on at the end of the transformer
demagnetization. The input signal for the ZCD is obtained as a partition of the auxiliary
voltage used to supply the device, see
When the integrated triggering circuit senses the negative going edge of the voltage V
going below the threshold V
to achieve the minimum drain-source voltage during the switch on. The mentioned triggering
circuit has to be previously armed by a positive going edge of the voltage V
the threshold V
After the MOSFET turn-off there is a typical noise generated by the transformer's leakage
inductance resonance ringing and coupled with the ZCD pin. The blanking time, T
helps to filter this noise avoiding false triggers of the ZCD circuit.
OSClim
, so the ‘L’ type is suitable for application where the priority is on the EMI filter
.
ZCDAth
. During the normal operation the converter works with a frequency below
Figure 29 on page 22
. See the
Figure 27 on page 21
Section 7.14 on page 32
ZCDTth
Doc ID 15455 Rev 5
Table 8 on page 8
, the power MOSFET is turned on with a delay that helps
Figure 28 on page 21
. In this way a “frequency clamp” effect is achieved,
.
.
. Decreasing the load will then result in
OSClim
.
.
Figure 27 on
ZCD
OSClim
, exceeding
OSClim
BLANK
VIPER15
, see
ZCD
,
,
,

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