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ADP2300AUJZ-R7 数据表(PDF) 21 Page - Analog Devices

部件名 ADP2300AUJZ-R7
功能描述  1.2 A, 20 V, 700 kHz/1.4 MHz, Nonsynchronous Step-Down Regulator
PDF  28 Pages
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制造商  AD [Analog Devices]
网页  http://www.analog.com
标志 AD - Analog Devices

ADP2300AUJZ-R7 数据表(HTML) 21 Page - Analog Devices

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Data Sheet
ADP2300/ADP2301
Rev. C | Page 21 of 28
DESIGN EXAMPLE
This section provides the procedures to select the external com-
ponents, based on the example specifications listed in Table 10.
The schematic for this design example is shown in Figure 48.
Table 10. Step-Down DC-to-DC Regulator Requirements
Parameter
Specification
Additional
Requirements
Input Voltage, V
IN
12.0 V ± 10%
None
Output Voltage, V
OUT
3.3 V, 1.2 A, 1% V
OUT
ripple at CCM mode
None
Programmable
UVLO Voltage
V
IN start-up voltage
approximately 7.8 V
None
SWITCHING FREQUENCY SELECTION
Select the switching frequency—700 kHz (ADP2300) or 1.4 MHz
(ADP2301)—using the conversion limitation curve shown in
Figure 44 to assess the conversion limitations (the minimum on
time, the minimum off time, and the bootstrap dropout voltage).
For example, in Figure 44 VIN = 12 V ± 10% is within the conver-
sion limitation for both the 700 kHz and 1.4 MHz switching
frequencies for an output voltage of 3.3 V, but choosing the 1.4 MHz
switching frequency provides the smallest sized solution. If higher
efficiency is required, choose the 700 kHz option; however, the
PCB footprint area of the regulator will be larger because of the
bigger inductor and output capacitors.
CATCH DIODE SELECTION
Select the catch diode. A Schottky diode is recommended for best
efficiency because it has a low forward voltage drop and faster
switching speed. The average current of the catch diode in
normal operation, with a typical Schottky diode forward
voltage, can be calculated using the following equation:
(max)
)
(
1
LOAD
D
IN
D
OUT
AVG
DIODE
I
V
V
V
V
I
×


+
+
=
where:
VOUT = 3.3 V.
VIN = 12 V.
ILOAD(max) = 1.2 A.
VD = 0.4 V.
Therefore, IDIODE(AVG) = 0.85 A.
However, for the worst-case condition, in which there is a shorted
output, the diode current would be increased to 2 A typical, deter-
mined by the peak switch current limit (see Table 1). In this case,
selecting a B230A, 2.0 A/30 V surface-mount Schottky diode
would result in more reliable operation.
INDUCTOR SELECTION
Select the inductor by using the following equation:
(
)


+
+
×
×
×
=
D
IN
D
OUT
sw
LOAD
OUT
IN
V
V
V
V
f
I
V
V
L
(max)
3
.
0
where:
VOUT = 3.3 V.
VIN = 12 V.
ILOAD(max) = 1.2 A.
VD = 0.4 V.
fSW = 1.4 MHz.
This results in L = 5.15 µH. The closest standard value is 4.7 µH;
therefore, ΔIRIPPLE = 0.394 A.
The inductor peak current is calculated using the following
equation:
2
(max)
RIPPLE
LOAD
PEAK
I
I
I
+
=
where:
ILOAD(max) = 1.2 A.
ΔIRIPPLE = 0.394 A.
Therefore, the calculated peak current for the inductor is 1.397 A.
However, to protect the inductor from reaching its saturation
point in the current-limit condition, the inductor should be rated
for at least a 2.0 A saturation current for reliable operation.
OUTPUT CAPACITOR SELECTION
Select the output capacitor based on the output voltage ripple
requirement, according to the following equation:


+
×
×
×
=
OUT
C
OUT
sw
RIPPLE
RIPPLE
ESR
C
f
I
V
8
1
where:
ΔIRIPPLE = 0.394 A.
fSW = 1.4 MHz.
ΔVRIPPLE = 33 mV.
If the ESR of the ceramic capacitor is 3 mΩ, then COUT = 1.2 µF.
Because the output capacitor is one of the two external components
that control the loop stability, most applications using the ADP2301
(1.4 MHz switching frequency) require a minimum 10 µF capaci-
tance to ensure stability. According to the recommended external
components in Table 11, choose 22 µF with a 6.3 V voltage rating
for this example.



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