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PDF AOZ1210 Data sheet ( Hoja de datos )

Número de pieza AOZ1210
Descripción 2A Simple Buck Regulator
Fabricantes Alpha & Omega Semiconductors 
Logotipo Alpha & Omega Semiconductors Logotipo



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No Preview Available ! AOZ1210 Hoja de datos, Descripción, Manual

AOZ1210
EZBuck™ 2A Simple Buck Regulator
General Description
The AOZ1210 is a high efficiency, simple to use, 2A buck
regulator flexible enough to be optimized for a variety of
applications. The AOZ1210 works from a 4.5V to 27V
input voltage range, and provides up to 2A of continuous
output current on each buck regulator output. The output
voltage is adjustable down to 0.8V.
Features
4.5V to 27V operating input voltage range
70minternal NFET, efficiency: up to 95%
Internal soft start
Output voltage adjustable down to 0.8V
2A continuous output current
Fixed 370kHz PWM operation
Cycle-by-cycle current limit
Short-circuit protection
Thermal shutdown
Small size SO-8 packages
Applications
Point of load DC/DC conversion
Set top boxes
DVD drives and HDD
LCD Monitors & TVs
Cable modems
Telecom/Networking/Datacom equipment
Typical Application
VIN
C1
22µF
C7
VIN BS
EN LX
AOZ1210
VBIAS
FB
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C4 COMP GND
RC
CC
L1
6.8µH
VOUT
R1
C4, C6
22µF
R2
Rev. 1.3 December 2007
Figure 1. 3.3V/2A Buck Regulator
www.aosmd.com
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AOZ1210 pdf
AOZ1210
Typical Performance Characteristics
Circuit of Figure 1. TA = 25°C, VIN = VEN = 24V, VOUT = 3.3V unless otherwise specified.
Light Load (DCM) Operation
Full Load (CCM) Operation
Vin ripple
0.1V/div
Vo ripple
20mV/div
IL
1A/div
VLX
20V/div
1µs/div
1µs/div
Startup to Full Load
Short Circuit Protection
Vin ripple
0.1V/div
Vo ripple
20mV/div
IL
1A/div
VLX
20V/div
Vo
2V/div
Vo
2V/div
lin
0.5A/div
2ms/div
50% to 100% Load Transient
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200µs/div
Vo Ripple
200mV/div
lo
1A/div
200µs/div
Short Circuit Recovery
lL
2A/div
Vo
2V/div
2ms/div
IL
2A/div
Rev. 1.3 December 2007
www.aosmd.com
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AOZ1210 arduino
AOZ1210
dissipation of converter circuit can be measured by input
power minus output power.
P total _loss = V IN × I IN V O × I O
The power dissipation of inductor can be approximately
calculated by output current and DCR of the inductor.
P inductor _loss = IO2 × R inductor × 1.1
The power dissipation of the diode is:
P diode_loss
=
IO × VF
×
1
V-V-----IO-N---
The actual AOZ1210 junction temperature can be
calculated with power dissipation in the AOZ1210 and
thermal impedance from junction to ambient.
T junction = (P total _lossP inductor _loss) × ΘJA
+ + T ambient
The maximum junction temperature of AOZ1210 is
145°C, which limits the maximum load current capability.
The thermal performance of the AOZ1210 is strongly
affected by the PCB layout. Care should be taken by
users during design process to ensure that the IC will
operate under the recommended environmental
conditions.
Several layout tips are listed below for the best electric
and thermal performance. Figure 3 is a layout example.
1. Do not use thermal relief connection to the VIN and
the GND pin. Pour a maximized copper area to the
GND pin and the VIN pin to help thermal dissipation.
2. Input capacitor should be connected as close as
possible to the VIN and GND pins.
3. Make the current trace from LX pins to L to CO to
GND as short as possible.
4. Pour copper plane on all unused board area and
connect it to stable DC nodes, like VIN, GND or VOUT.
5. Keep sensitive signal traces such as the trace
connecting FB and COMP pins away from the
LX pins.
Cc Rc
5 COMP
VIN 6 EN
7 Vin
AOZ1210 /2
8 VBIAS
4 FB
3 GND
2 BST
1 LX
L1
Vo
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C2
C
2
Rev. 1.3 December 2007
Figure 3. Layout Example of the AOZ1210
www.aosmd.com
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