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AP6502 Datasheet(PDF) 9 Page - Diodes Incorporated

Part # AP6502
Description  340kHz 23V 2A SYNCHRONOUS DC/DC BUCK CONVERTER
PDF  12 Pages
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Manufacturer  DIODES [Diodes Incorporated]
Direct Link  http://www.diodes.com
Logo DIODES - Diodes Incorporated

AP6502 Datasheet(HTML) 9 Page - Diodes Incorporated

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AP6502
340kHz 23V 2A SYNCHRONOUS DC/DC BUCK CONVERTER
AP6502
Document Number: DS35423 Rev. 2 - 2
9 of 12
www.diodes.com
September 2011
© Diodes Incorporated
Applications Information (cont.)
Compensation Components (cont.)
2. Choose the compensation capacitor (C3) to achieve the
desired phase margin set the compensation zero, fZ1, to
below one fourth of the crossover frequency to provide
sufficient phase margin. Determine the C3 value by the
following equation:
fc
3
R
2
3
C
×
×
π
>
Where R3 is the compensation resistor value.
VOUT
(V)
Cin/C1
(µF)
Cout/C2
(µF)
Rc/R3
(k
Ω)
Cc/C3
(nF)
L1
(µH)
1.2
22
47
3.24
6.8
3.3
1.8
22
47
6.8
6.8
3.3
2.5
22
47
6.8
6.8
10
3.3
22
47
6.8
6.8
10
5
22
47
6.8
6.8
10
12
22
47
6.8
6.8
15
Table 2—Resistor
Component Selection
Inductor
Calculating the inductor value is a critical factor in
designing a buck converter. For most designs, the
following equation can be used to calculate the inductor
value;
SW
f
L
ΔI
IN
V
)
OUT
V
IN
(V
OUT
V
L
⋅
⋅
−
⋅
=
Where
L
ΔI is the inductor ripple current.
And
SW
f
is the buck converter switching frequency.
Choose the inductor ripple current to be 30% of the
maximum load current. The maximum inductor peak
current is calculated from:
2
L
ΔI
LOAD
I
L(MAX)
I
+
=
Peak current determines the required saturation current
rating, which influences the size of the inductor. Saturating
the inductor decreases the converter efficiency while
increasing the temperatures of the inductor and the
internal MOSFETs. Hence choosing an inductor with
appropriate saturation current rating is important.
A 1µH to 10µH inductor with a DC current rating of at least
25% percent higher than the maximum load current is
recommended for most applications.
For highest efficiency, the inductor’s DC resistance
should be less than 200m
Ω. Use a larger inductance
for improved efficiency under light load conditions.
Input Capacitor
The input capacitor reduces the surge current drawn from
the input supply and the switching noise from the device.
The input capacitor has to sustain the ripple current
produced during the on time on the upper MOSFET. It
must hence have a low ESR to minimize the losses.
The RMS current rating of the input capacitor is a critical
parameter that must be higher than the RMS input
current. As a rule of thumb, select an input capacitor
which has RMs rating that is greater than half of the
maximum load current.
Due
to
large
dI/dt
through
the
input
capacitors,
electrolytic or ceramics should be used. If a tantalum
must be used, it must be surge protected. Otherwise,
capacitor failure could occur. For most applications, a
4.7µF ceramic capacitor is sufficient.
Output Capacitor
The output capacitor keeps the output voltage ripple
small, ensures feedback loop stability and reduces the
overshoot of the output voltage. The output capacitor is a
basic component for the fast response of the power
supply. In fact, during load transient, for the first few
microseconds it supplies the current to the load. The
converter recognizes the load transient and sets the duty
cycle to maximum, but the current slope is limited by the
inductor value.
Maximum capacitance required can be calculated from
the following equation:
ESR of the output capacitor dominates the output voltage
ripple. The amount of ripple can be calculated from the
equation below:
ESR
*
inductor
ΔI
capacitor
Vout
=
An output capacitor with ample capacitance and low ESR
is the best option. For most applications, a 22µF ceramic
capacitor will be sufficient.
2
out
2
out
2
inductor
out
o
V
)
V
V
(
Δ
)
2
ΔI
L(I
C
−
+
+
=
Where
ΔV is the maximum output voltage overshoot.
PC Board Layout
This is a high switching frequency converter. Hence
attention
must
be
paid
to
the
switching
currents
interference in the layout. Switching current from one
power device to another can generate voltage transients
across the impedances of the interconnecting bond wires
and circuit traces. These interconnecting impedances
should be minimized by using wide, short printed circuit
traces.



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