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ADP5301ACBZ-1-R7 数据表(PDF) 16 Page - Analog Devices

部件名 ADP5301ACBZ-1-R7
功能描述  50 mA/500 mA, High Efficiency,Ultralow Power Step-Down Regulator
PDF  21 Pages
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制造商  AD [Analog Devices]
网页  http://www.analog.com
标志 AD - Analog Devices

ADP5301ACBZ-1-R7 数据表(HTML) 16 Page - Analog Devices

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ADP5301
Data Sheet
Rev. A | Page 16 of 21
APPLICATIONS INFORMATION
This section describes the external components selection for the
ADP5301. A typical application circuit is shown in Figure 38.
2.2µH
SW
PGND
FB
10µF
MLCC
10µF
MLCC
VOUT = 1.8V
PVIN
SYNC/
MODE
EN
VID
VIN =
2.15V TO 6.50V
ADP5301
(9-BALL WLCSP)
RVID
20kΩ
VOUTOK
AGND
R1
1MΩ
Figure 38. Typical Application Circuit
EXTERNAL COMPONENT SELECTION
The ADP5301 is optimized for operation with a 2.2 μH inductor
and 10 μF output capacitors for various output voltages using
the closed-loop compensation and adaptive slope compensation
circuits. The selection of components depends on the efficiency,
the load current transient, and other application requirements. The
trade-offs among performance parameters, such as efficiency and
transient response, are made by varying the choice of external
components.
SELECTING THE INDUCTOR
The high switching frequency of the ADP5301 allows the use of
small surface-mount power inductors. The dc resistance (DCR)
value of the selected inductor affects efficiency. In addition, it is
recommended to select a multilayer inductor rather than a
magnetic iron inductor because the high switching frequency
increases the core temperature rise and enlarges the core loss.
A minimum requirement of the dc current rating of the inductor
is for it to be equal to the maximum load current plus half of the
inductor current ripple (ΔIL), as shown by the following equations:
SW
IN
OUT
OUT
L
f
L
V
V
V
I
1
 
2
)
(
L
MAX
LOAD
PK
I
I
I
Use the inductor series from different vendors shown in Table 6.
OUTPUT CAPACITOR
Output capacitance is required to minimize the voltage overshoot,
the voltage undershoot, and the ripple voltage present on the
output. Capacitors with low equivalent series resistance (ESR)
values produce the lowest output ripple. Furthermore, use
capacitors such as X5R and X7R dielectric capacitors. Do not
use Y5V and Z5U capacitors, which are unsuitable choices due
to their large capacitance variation over temperature and their dc
bias voltage changes. Because ESR is important, select the capacitor
using the following equation:
L
RIPPLE
COUT
I
V
ESR
Δ
where:
ESRCOUT is the ESR of the chosen capacitor.
VRIPPLE is the peak-to-peak output voltage ripple.
Increasing the output capacitor value has no effect on stability and
may reduce output ripple and enhance load transient response.
When choosing the output capacitor value, it is important to
account for the loss of capacitance due to output voltage dc bias.
Use the capacitor series from different vendors shown in Table 7.
Table 6. Recommended Inductors
Vendor
Model
Inductance (μH)
Dimensions (mm)
DCR (mΩ)
ISAT1 (A)
TDK
MLP2016V2R2MT0S1
2.2
2.0 × 1.6 × 0.85
280
1.0
Wurth
74479889222
2.2
2.5 × 2.0 × 1.2
250
1.7
Coilcraft
LPS3314-222MR
2.2
3.3 × 3.3 × 1.3
100
1.5
1 ISAT is the dc current at which the inductance drops 30% (typical) from its value without current.
Table 7. Input and Output Capacitors
Vendor
Model
Capacitance (μF)
Size
Murata
GRM188D71A106MA73
10
0603
Murata
GRM21BR71A106KE51
10
0805
Murata
GRM31CR71A106KA01
10
1206



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