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EC3293 Datasheet(PDF) 7 Page - E-CMOS Corporation

Part # EC3293
Description  3A, 18V, Synchronous Step-down DC/DC Converter
PDF  11 Pages
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Manufacturer  E-CMOS [E-CMOS Corporation]
Direct Link  http://www.ecmos.com.tw/
Logo E-CMOS - E-CMOS Corporation

EC3293 Datasheet(HTML) 7 Page - E-CMOS Corporation

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3A, 18V, Synchronous Step-down DC/DC Converter
EC3293
E-CMOS Corp. (www.ecmos.com.tw)
Page 7 of 11
3L03N-Rev.P001
Application Information
Overview
The EC3293 is a synchronous rectified, current-mode,
step-down regulator. It regulates input voltages from
4.75V to 18V down to an output voltage as low as
0.923V, and supplies up to 3A of load current.
The EC3293 uses current-mode control to regulate
the output voltage. The output voltage is measured at
FB through a resistive voltage divider and amplified
through the internal transconductance error amplifier.
The voltage at the COMP pin is compared to the switch
current measured internally to control the output
voltage.
The converter uses internal N-Channel MOSFET switches
to step-down the input voltage to the regulated output
voltage. Since the high side MOSFET requires a gate
voltage greater than the input voltage, a boost capacitor
connected between SW and BOOT is needed to drive
the high side gate. The boost capacitor is charged from
the internal 5V rail when SW is low.
When the EC3293 FB pin exceeds 10% of the
nominal regulation voltage of 0.923V, the over voltage
comparator is tripped and the COMP pin is discharged
to GND, forcing the high-side switch off.
Pins Description
BOOT: High-Side Gate Drive Boost Input. BOOT supplies
the drive for the high-side N-Channel MOSFET switch.
Connect a 0.1μF or greater capacitor from SW to BOOT
to power the high side switch.
IN: Power Input. IN supplies the power to the IC, as well
as the step-down converter switches. Drive IN with a
4.75V to 18V power source. Bypass IN to GND with a
suitably large capacitor to eliminate noise on the input
to the IC.
SW: Power Switching Output. SW is the switching node
that supplies power to the output. Connect the output
LC filter from SW to the output load. Note that a
capacitor is required from SW to BOOT to power the
high-side switch.
GND: Ground.
FB: Feedback Input. FB senses the output voltage to
regulate that voltage. Drive FB with a resistive voltage
divider from the output voltage. The feedback threshold
is 0.923V.
COMP: Compensation Node.COMP is used to compensate.
the regulation control loop. Connect a series RC
network from COMP to GND to compensate the
regulation control loop. In some cases, an additional
capacitor from COMP to GND is required.
EN: Enable Input. EN is a digital input that turns the
regulator on or off. Drive EN high to turn on the
regulator, drive it low t
o turn it off. Pull up with 100kΩ
resistor for automatic startup.
FREQ: Switching Frequency Program Input. Connect a
resistor from this pin to ground to set the switching
frequency.
Setting the Output Voltage
The output voltage is set using a resistive voltage divider
from the output voltage to FB pin. The voltage divider
divides the output voltage down to the feedback voltage
by the ratio:
VFB = VOUT × R2 / (R1 + R2)
Where VFB is the feedback voltage and VOUT is the output
voltage.
Thus the output voltage is:
VOUT = 0.923 × (R1 + R2) / R2
R2 can be as high as 100kΩ, but a typical value is 10kΩ.
Using the typical value for R2, R1 is determined by:
R1 = 10.83 × (VOUT − 0.923V) (KΩ)
Programmable Oscillator
The EC3293 oscillating frequency is set by an
external resistor, Rfreq from the FREQ pin to ground. The
value of Rfreq can be calculated from:
Rfreq(KΩ) = 87000/FOSC1(KHz)
Inductor
The inductor is required to supply constant current to
the output load while being driven by the switched
input voltage. A larger value inductor will result in less



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