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ISL6613BECBZ Datasheet(PDF) 7 Page - Intersil Corporation

Part # ISL6613BECBZ
Description  Advanced Synchronous Rectified Buck MOSFET Drivers with Pre-POR OVP
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Manufacturer  INTERSIL [Intersil Corporation]
Direct Link  http://www.intersil.com/cda/home
Logo INTERSIL - Intersil Corporation

ISL6613BECBZ Datasheet(HTML) 7 Page - Intersil Corporation

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7
FN9205.4
May 1, 2012
Description
Operation
Designed for versatility and speed, the ISL6612B and
ISL6613B MOSFET drivers control both high-side and low-side
N-Channel FETs of a half-bridge power train from one
externally provided PWM signal.
Prior to VCC exceeding its POR level, the Pre-POR over-
voltage protection function is activated during initial start-up; the
upper gate (UGATE) is held low and the lower gate (LGATE),
controlled by the Pre-POR overvoltage protection circuits, is
connected to the PHASE. Once the VCC voltage surpasses the
VCC Rising Threshold (See “Electrical Specifications” on
page 5), the PWM signal takes control of gate transitions. A
rising edge on PWM initiates the turn-off of the lower MOSFET
(see Timing Diagram on page 7). After a short propagation
delay [tPDLL], the lower gate begins to fall. Typical fall times
[tFL] are provided in the “Electrical Specifications” section.
Adaptive shoot-through circuitry monitors the PHASE voltage
and determines the upper gate delay time [tPDHU]. This
prevents both the lower and upper MOSFETs from conducting
simultaneously. Once this delay period is complete, the upper
gate drive begins to rise [tRU] and the upper MOSFET turns on.
A falling transition on PWM results in the turn-off of the upper
MOSFET and the turn-on of the lower MOSFET. A short
propagation delay [tPDLU] is encountered before the upper
gate begins to fall [tFU]. Again, the adaptive shoot-through
circuitry determines the lower gate delay time, tPDHL. The
PHASE voltage and the UGATE voltage are monitored, and
the lower gate is allowed to rise after PHASE drops below a
level or the voltage of UGATE to PHASE reaches a level
depending upon the current direction (See next section for
details). The lower gate then rises [tRL], turning on the lower
MOSFET.
Advanced Adaptive Zero Shoot-Through Deadtime
Control (Patent Pending)
These drivers incorporate a unique adaptive deadtime control
technique to minimize deadtime, resulting in high efficiency
from the reduced freewheeling time of the lower MOSFETs’
body-diode conduction, and to prevent the upper and lower
MOSFETs from conducting simultaneously. This is
accomplished by ensuring either rising gate turns on its
MOSFET with minimum and sufficient delay after the other has
turned off.
During turn-off of the lower MOSFET, the PHASE voltage is
monitored until it reaches a -0.2V/+0.8V trip point for a
forward/reverse current, at which time the UGATE is released
to rise. An auto-zero comparator is used to correct the rDS(ON)
drop in the phase voltage preventing from false detection of the
-0.2V phase level during rDS(ON conduction period. In the case
of zero current, the UGATE is released after 35ns delay of the
LGATE dropping below 0.5V. During the phase detection, the
disturbance of LGATE’s falling transition on the PHASE node is
blanked out to prevent falsely tripping. Once the PHASE is
high, the advanced adaptive shoot-through circuitry monitors
the PHASE and UGATE voltages during a PWM falling edge
and the subsequent UGATE turn-off. If either the UGATE falls
to less than 1.75V above the PHASE or the PHASE falls to less
than +0.8V, the LGATE is released to turn on.
Three-State PWM Input
A unique feature of these drivers and other Intersil drivers is
the addition of a shutdown window to the PWM input. If the
PWM signal enters and remains within the shutdown window
for a set holdoff time, the driver outputs are disabled and
both MOSFET gates are pulled and held low. The shutdown
state is removed when the PWM signal moves outside the
shutdown window. Otherwise, the PWM rising and falling
thresholds outlined in the “Electrical Specifications”
determine when the lower and upper gates are enabled.
PWM
UGATE
LGATE
tFL
tPDHU
tPDLL
tRL
tTSSHD
tPDTS
tPDTS
1.5V<PWM<3.2V
1.0V<PWM<2.6V
tFU
tRU
tPDLU
tPDHL
tTSSHD
FIGURE 1. TIMING DIAGRAM
ISL6612B, ISL6613B


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