STEVAL-ISA023V2 STMicroelectronics, STEVAL-ISA023V2 Datasheet - Page 19

EVAL BOARD 24W NEG OUT VIPER53E

STEVAL-ISA023V2

Manufacturer Part Number
STEVAL-ISA023V2
Description
EVAL BOARD 24W NEG OUT VIPER53E
Manufacturer
STMicroelectronics
Series
VIPER™r
Type
AC/DC Switching Convertersr
Datasheets

Specifications of STEVAL-ISA023V2

Mfg Application Notes
VIPer53EDIP - AppNote
Design Resources
STEVAL-ISA023V2 Gerber Files STEVAL-ISA023V2 Schematic STEVAL-ISA023V2 Bill of Materials
Main Purpose
AC/DC, Primary Side
Outputs And Type
2, Isolated
Power - Output
24W
Voltage - Output
-5V, -12V
Current - Output
3A, 800mA
Voltage - Input
90 ~ 265VAC
Regulator Topology
Flyback
Frequency - Switching
60kHz
Board Type
Fully Populated
Utilized Ic / Part
VIPer53
Input Voltage
90 V to 265 V
Output Voltage
- 5 V, - 12 V
Product
Power Management Modules
Silicon Manufacturer
ST Micro
Silicon Core Number
VIPer53-E
Kit Application Type
Power Management
Application Sub Type
SMPS
Kit Contents
Board
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
For Use With/related Products
VIPer53-E
Other names
497-5866

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Part Number:
STEVAL-ISA023V2
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VIPer53 - E
7
Current mode topology
The VIPer53-E implements the conventional current mode control method for regulating the
output voltage. This kind of feedback includes two nested regulation loops:
The inner loop controls the peak primary current cycle by cycle. When the Power MOSFET
output transistor is on, the inductor current (primary side of the transformer) is monitored
with a SenseFET technique and converted into a voltage. When V
power switch is turned off. This structure is completely integrated as shown on the Block
Diagram
function and the PWM latch. The following formula gives the peak current in the Power
MOSFET according to the compensation voltage:
Equation 1
The outer loop defines the level at which the inner loop regulates peak current in the power
switch. For this purpose, V
optocoupler in secondary feedback configuration, see
accordingly the peak drain current for each switching cycle.
As the inner loop regulates the peak primary current in the primary side of the transformer,
all input voltage changes are compensated for before impacting the output voltage. This
results in an improved line regulation, instantaneous correction to line changes, and better
stability for the voltage regulation loop.
Current mode topology also provides a good converter start-up control. The compensation
voltage can be controlled to increase slowly during the start-up phase, so the peak primary
current will follow this soft voltage slope to provide a smooth output voltage rise, without any
overshoot. The simpler voltage mode structure which only controls the duty cycle, leads
generally to high current at start-up with the risk of transformer saturation.
An integrated blanking filter inhibits the PWM comparator output for a short time after the
integrated Power MOSFET is switched on. This function prevents anomalous or premature
termination of the switching pulse in the case of current spikes caused by primary side
transformer capacitance or secondary side rectifier reverse recovery time when working in
continuous mode.
on page
1, with the current amplifier, the PWM comparator, the blanking time
COMP
I
is driven by the feedback network (TL431 through an
Dpeak
=
V
------------------------------------------------- -
COMP
H
COMP
V
COMPos
Figure 19 on page
S
Current mode topology
reaches V
17) and is sets
COMP
, the
19/36

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