參數(shù)資料
型號(hào): AOZ1016
廠商: ALPHA
英文描述: EZBuck⑩ 2A Simple Buck Regulator
中文描述: EZBuck⑩甲簡(jiǎn)單降壓穩(wěn)壓器
文件頁(yè)數(shù): 7/15頁(yè)
文件大小: 435K
代理商: AOZ1016
AOZ1016
Rev. 1.1 September 2007
www.aosmd.com
Page 7 of 15
Detailed Description
The AOZ1016 is a current-mode step down regulator with
integrated high side PMOS switch and a low side free-
wheeling Schottky diode. It operates from a 4.5V to 16V
input voltage range and supplies up to 2A of load current.
The duty cycle can be adjusted from 6% to 100%
allowing a wide range of output voltages. Features
include enable control, Power-On Reset, input under
voltage lockout, fixed internal soft-start and thermal shut
down.
The AOZ1016 is available in SO-8 package.
Enable and Soft Start
The AOZ1016 has internal soft start feature to limit
in-rush current and ensure the output voltage ramps
up smoothly to regulation voltage. A soft start process
begins when the input voltage rises to 4.0V and voltage
on EN pin is HIGH. In soft start process, the output
voltage is ramped to regulation voltage in typically 2.2ms.
The 2.2ms soft start time is set internally.
The EN pin of the AOZ1016 is active HIGH. Connect the
EN pin to V
IN
if enable function is not used. Pull it to
ground will disable the AOZ1016. Do not leave it open.
The voltage on EN pin must be above 2.0V to enable the
AOZ1016. When voltage on EN pin falls below 0.6V, the
AOZ1016 is disabled. If an application circuit requires the
AOZ1016 to be disabled, an open drain or open collector
circuit should be used to interface to EN pin.
Steady-State Operation
Under steady-state conditions, the converter operates
in fixed frequency and Continuous-Conduction Mode
(CCM).
The AOZ1016 integrates an internal P-MOSFET as the
high-side switch. Inductor current is sensed by amplifying
the voltage drop across the drain to source of the high
side power MOSFET. Output voltage is divided down by
the external voltage divider at the FB pin. The difference
of the FB pin voltage and reference is amplified by the
internal transconductance error amplifier. The error volt-
age, which shows on the COMP pin, is compared against
the current signal, which is sum of inductor current signal
and ramp compensation signal, at PWM comparator
input. If the current signal is less than the error voltage,
the internal high-side switch is on. The inductor current
flows from the input through the inductor to the output.
When the current signal exceeds the error voltage,
the high-side switch is off. The inductor current is free-
wheeling through the internal Schottky diode to output.
The AOZ1016 uses a P-Channel MOSFET as the high
side switch. It saves the bootstrap capacitor normally
seen in a circuit which is using an NMOS switch. It allows
100% turn-on of the upper switch to achieve linear regu-
lation mode of operation. The minimum voltage drop from
V
IN
to V
O
is the load current times DC resistance of
MOSFET plus DC resistance of buck inductor. It can be
calculated by equation below:
where;
V
O_MAX
is the maximum output voltage,
V
IN
is the input voltage from 4.5V to 16V,
I
O
is the output current from 0A to 2A,
R
DS(ON)
is the on resistance of internal MOSFET, the value is
between 97m
and 200m
depending on input voltage and
junction temperature, and
R
inductor
is the inductor DC resistance.
Switching Frequency
The AOZ1016 switching frequency is fixed and set by an
internal oscillator. The actual switching frequency could
range from 400kHz to 600kHz due to device variation.
Output Voltage Programming
Output voltage can be set by feeding back the output to
the FB pin with a resistor divider network. In the
application circuit shown in Figure 1. The resistor divider
network includes R
2
and R
3
. Usually, a design is started
by picking a fixed R
3
value and calculating the required
R
2
with equation below.
R
2
R
3
Some standard values of R
2
, R
3
for most commonly used
output voltage values are listed in Table 1.
Table 1.
V
O
(V)
R
2
(k
)
R
3
(k
)
0.8
1.0
Open
1.2
4.99
10
1.5
10
11.5
1.8
12.7
10.2
2.5
21.5
10
3.3
31.6
10
5.0
52.3
10
V
O_MAX
V
IN
I
O
R
DS ON
)
R
inductor
+
(
)
×
=
V
O
0.8
1
------
+
×
=
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