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BAT54 датащи(PDF) 11 Page - Fairchild Semiconductor

номер детали BAT54
подробное описание детали  Dual Mobile-Friendly DDR / Dual-Output PWM Controller
Download  19 Pages
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производитель  FAIRCHILD [Fairchild Semiconductor]
домашняя страница  http://www.fairchildsemi.com
Logo FAIRCHILD - Fairchild Semiconductor

BAT54 датащи(HTML) 11 Page - Fairchild Semiconductor

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© 2002 Fairchild Semiconductor Corporation
www.fairchildsemi.com
FAN5236 • Rev. 1.3.2
11
Initialization and Soft Start
Assuming EN is HIGH, FAN5236 is initialized when VCC
exceeds the rising UVLO threshold. Should VCC drop
below the UVLO threshold, an internal power-on reset
function disables the chip.
The voltage at the positive input of the error amplifier is
limited by the voltage at the SS pin, which is charged
with a 5
μA current source. Once CSS has charged to
VREF (0.9V) the output voltage is in regulation. The time
it takes SS to reach 0.9V is:
5
xC
9
.
0
t
SS
9
.
0
=
(1)
where t0.9 is in seconds if CSS is in μF.
When SS reaches 1.5V, the power-good outputs are
enabled and Hysteretic Mode is allowed. The converter
is forced into PWM Mode during soft-start.
Operation Mode Control
The mode-control circuit changes the converter mode
from PWM to hysteretic and vice versa, based on the
voltage polarity of the SW node when the lower
MOSFET is conducting and just before the upper
MOSFET turns on. For continuous inductor current, the
SW node is negative when the lower MOSFET is
conducting and the converters operate in fixed-
frequency PWM Mode, as shown in Figure 11. This
mode achieves high efficiency at nominal load. When
the load current decreases to the point where the
inductor current flows through the lower MOSFET in the
‘reverse’ direction, the SW node becomes positive and
the mode is changed to hysteretic, which achieves
higher efficiency at low currents by decreasing the
effective switching frequency.
To prevent accidental mode change or "mode chatter,"
the transition from PWM to Hysteretic Mode occurs
when the SW node is positive for eight consecutive
clock cycles, as shown in Figure 11. The polarity of the
SW node is sampled at the end of the lower MOSFET
conduction time. At the transition between PWM and
Hysteretic Mode, the upper and lower MOSFETs are
turned off. The phase node “rings” based on the output
inductor and the parasitic capacitance on the phase
node and settles out at the value of the output voltage.
The boundary value of inductor current, where current
becomes discontinuous, can be estimated by the
following expression:
⎟⎟
⎜⎜
=
IN
OUT
SW
OUT
OUT
IN
)
DIS
(
LOAD
V
L
F
2
V
)
V
V
(
I
(2)
PWMMode
HystereticMode
HystereticMode
PWMMode
1
234
567
8
VCORE
I L
0
VCORE
I
L 0
1
23
4
5
6
7
8
Figure 11.
Transitioning Between PWM and Hysteretic Mode
Hysteretic Mode
Conversely, the transition from Hysteretic Mode to
PWM Mode occurs when the SW node is negative for
eight consecutive cycles.
A sudden increase in the output current causes a
change from Hysteretic to PWM Mode. This load
increase causes an instantaneous decrease in the
output voltage due to the voltage drop on the output
capacitor ESR. If the load causes the output voltage (as
presented at VSNS) to drop below the hysteretic
regulation level (20mV below VREF), the mode is
changed to PWM on the next clock cycle.
In Hysteretic Mode, the PWM comparator and the error
amplifier that provide control in PWM Mode are
inhibited and the hysteretic comparator is activated. In
Hysteretic Mode, the low-side MOSFET is operated as
a synchronous rectifier, where the voltage across
VDS(ON) is monitored and switched off when VDS(ON) goes
positive (current flowing back from the load), allowing
the diode to block reverse conduction.
The hysteretic comparator initiates a PFM signal to turn
on HDRV at the rising edge of the next oscillator clock,
when the output voltage (at VSNS) falls below the lower
threshold (10mV below VREF) and terminates the PFM
signal or when VSNS rises over the higher threshold
(5mV above VREF). The switching frequency is primarily
a function of:
Spread between the two hysteretic thresholds
ILOAD
Output inductor and capacitor ESR.


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