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PFS7323 Datasheet(PDF) 5 Page - Power Integrations, Inc.

Part # PFS7323
Description  High Power PFC Controller with Integrated High-Voltage MOSFET and Qspeed Diode
PDF  30 Pages
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Manufacturer  POWERINT [Power Integrations, Inc.]
Direct Link  http://www.powerint.com
Logo POWERINT - Power Integrations, Inc.

PFS7323 Datasheet(HTML) 5 Page - Power Integrations, Inc.

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Rev. B 06/13
5
PFS7323-7329
www.powerint.com
IS dt
VE
VOFF
(VOUT-VIN)dt
Latch
RESET
Latch
SET
Gate
Drive (Q)
Maximum
ON-time
Minimum
OFF-time
Timing
Supervisor
Figure 4.
Idealized Converter Waveforms.
Figure 5.
Typical Normalized Output Voltage Characteristics as Function of
Normalized Peak Load Rating
Figure 6.
Normalized Minimum Power Limit as Function of Input Voltage.
0
0.2
0.4
0.6
1
1.2
1.4
0.8
Normalized to Peak Power Rating
1.2
1
0.8
0.6
0.4
0.2
0
The relationship of (4) demonstrates that by controlling a
constant amp-second on-time and constant volt-second
off-time, the input current I
IN is proportional to the input voltage
V
IN, therefore providing the fundamental requirement of power
factor correction.
This control produces a continuous mode power switch current
waveform that varies both in frequency and peak current value
across a line half-cycle to produce an input current proportional
to the input voltage.
Control Engine
The controller features a low bandwidth error-amplifier which
connects its non-inverting terminal to an internal voltage
reference of 6 V. The inverting terminal of the error-amplifier is
available on the external CONTROL pin which connects to the
loop compensation and voltage divider network to regulate the
output voltage. The FEEDBACK pin connects directly to the
divider network for fast transient load response.
The internal sense-FET switch current is integrated and scaled
by the input voltage peak detector current sense gain (M
ON) and
compared with the error-amplifier signal (V
E) to determine the
cycle on-time. Internally the difference between the input and
output voltage is derived and the resultant is scaled, integrated,
and compared to a voltage reference (V
OFF) to determine the
cycle off-time. Careful selection of the internal scaling factors
produce input current waveforms with very low distortion and
high power factor.
Line Feed-Forward Scaling Factor (M
ON)
The VOLTAGE MONITOR (V) pin current is used internally to
derive the peak of the input line voltage which is used to scale
the gain of the current sense signal through the M
ON variable.
This contribution is required to reduce the dynamic range of the
control feedback signal as well as maintain a constant loop gain
over the operating input line range. This line-sense feed-
forward gain adjustment is proportional to the square of the
peak rectified AC line voltage and is adjusted as a function of
VOLTAGE MONITOR pin current. The line-sense feed-forward
gain is also important in providing a switch power limit over the
input line range. Besides modifying brown- in/out thresholds,
the VOLTAGE MONITOR pin resistor also affects power limit of
the device.
This characteristic is optimized to maintain a relatively constant
internal error-voltage level at full load from an input line of 100 to
230 VAC input.
Beyond the specified peak power rating of the device, the
internal power limit feature will regulate the output voltage below
the set regulation threshold as a function of output overload
beyond the peak power rating. Figure 5 illustrates the typical
regulation characteristic as function of load.
Below the brown-in threshold (I
UV+) the power limit is reduced
when the device is operated in the ‘Full’ power mode as shown
in the figure below.
As the input line voltage is reduced toward the brown-out
threshold (I
UV-) and if the load exceeds the power limit derating
the boost output voltage will drop out of regulation in
accordance to Figure 6.
70
75
80
85
95
100
90
Input Voltage (VAC)
1.2
1
0.8
0.6
0.4
0.2
0



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