ISL6306CRZ-T Intersil, ISL6306CRZ-T Datasheet - Page 14

IC CTRLR PWM 4-PHASE 40-QFN

ISL6306CRZ-T

Manufacturer Part Number
ISL6306CRZ-T
Description
IC CTRLR PWM 4-PHASE 40-QFN
Manufacturer
Intersil
Datasheet

Specifications of ISL6306CRZ-T

Pwm Type
Voltage Mode
Number Of Outputs
1
Frequency - Max
275kHz
Duty Cycle
66.7%
Voltage - Supply
4.75 V ~ 5.25 V
Buck
Yes
Boost
No
Flyback
No
Inverting
No
Doubler
No
Divider
No
Cuk
No
Isolated
No
Operating Temperature
0°C ~ 70°C
Package / Case
40-VFQFN, 40-VFQFPN
Frequency-max
275kHz
Lead Free Status / RoHS Status
Lead free / RoHS Compliant

Available stocks

Company
Part Number
Manufacturer
Quantity
Price
Company:
Part Number:
ISL6306CRZ-T
Quantity:
50
is driven by the position of the error amplifier output signal,
V
sawtooth ramp as illustrated in Figure 7. When the modified
V
transitions high. The MOSFET driver detects the change in
state of the PWM signal and turns off the synchronous
MOSFET and turns on the upper MOSFET. The PWM signal
will remain high until the pulse termination signal marks the
beginning of the next cycle by triggering the PWM signal low.
Current Sampling
During the forced off-time following a PWM transition low,
the associated channel current sense amplifier uses the
I
current (I
1/6 period after each PWM goes low and continuously gets
sampled for 1/3 period, or until the PWM goes high,
whichever comes first. No matter the current sense method,
the sense current (I
inductor current. Coincident with the falling edge of the PWM
signal, the sample and hold circuitry samples the sensed
current signal (I
Therefore, the sample current (I
output current and held for one switching cycle. The sample
current is used for current balance, load-line regulation, and
overcurrent protection.
Current Sensing
The ISL6306 supports inductor DCR sensing, MOSFET
r
internal circuitry, shown in Figures 4, 5, and 6, represents
one channel of an N-channel converter. This circuitry is
repeated for each channel in the converter, but may not be
active depending on the status of the PWM3 and PWM4
pins, as described in “PWM Operation” on page 13.
SEN
DS(ON)
COMP
COMP
inputs to reproduce a signal proportional to the inductor
, minus the current correction signal relative to the
voltage crosses the sawtooth ramp, the PWM output
sensing, or resistive sensing techniques. The
L
). This current gets sampled starting
FIGURE 3. SAMPLE AND HOLD TIMING
SEN
SEN
) as illustrated in Figure 3.
PWM
0.5Tsw
) is simply a scaled version of the
SWITCHING PERIOD
14
I
L
TIME
SAMPLE CURRENT, I
n
) is proportional to the
I
SEN
n
ISL6306
INDUCTOR DCR SENSING
An inductor’s winding is characteristic of a distributed
resistance as measured by the DCR (Direct Current
Resistance) parameter. Consider the inductor DCR as a
separate lumped quantity, as shown in Figure 4. The
channel current (I
pass through the DCR. Equation 3 shows the s-domain
equivalent voltage across the inductor V
A simple RC network across the inductor extracts the DCR
voltage, as shown in Figure 4.
The voltage on the capacitor (V
proportional to the channel current (I
If the RC network components are selected such that the RC
time constant (= R*C) matches the inductor time constant
(= L/DCR), the voltage across the capacitor (V
the voltage drop across the DCR (i.e., proportional to the
channel current).
With the internal low-offset current amplifier, the capacitor
voltage (V
Therefore the current out of ISEN+ pin (I
to the inductor current.
V
V
C
L
=
=
ISL6306 INTERNAL CIRCUIT
-------------------------------------------------------------------- -
SAMPLE
I
L
s
HOLD
AND
FIGURE 4. DCR SENSING CONFIGURATION
(
-------------
DCR
I
C
n
I
s L
SEN
L
) is replicated across the sense resistor (R
ISL6605
(
s RC
+
+
=
DCR
1
PWM(n)
L
I
L
) flowing through the inductor, will also
+
----------------- -
R
(
DCR
DCR I
)
1
ISEN
)
+
-
V
L
IN
)
C
ISEN-(n)
ISEN+(n)
) can be shown to be
INDUCTOR
R
L
L
I
) see Equation 4.
L
s ( )
V
L
SEN
L
V
.
DCR
C
-
C
(s)
) is proportional
-
C
R
(PTC)
) is equal to
ISEN(n)
C
V
OUT
May 5, 2008
OUT
(EQ. 3)
(EQ. 4)
FN9226.1
ISEN
).

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