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ADP5301ACBZ-2-R7 数据表(PDF) 14 Page - Analog Devices

部件名 ADP5301ACBZ-2-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-2-R7 数据表(HTML) 14 Page - Analog Devices

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ADP5301
Data Sheet
Rev. A | Page 14 of 21
THEORY OF OPERATION
The ADP5301 is a high efficiency, ultralow quiescent current
step-down regulator in a 9-ball WLCSP to meet demanding
performance and board space requirements. The device enables
direct connection to the wide input voltage range of 2.15 V to
6.50 V, allowing the use of multiple alkaline/NiMH or Li-Ion
cells and other power sources.
BUCK REGULATOR OPERATION MODES
PWM Mode
In PWM mode, the buck regulator in the ADP5301 operates at
a fixed frequency that is set by an internal oscillator. At the start
of each oscillator cycle, the high-side MOSFET switch turns on and
sends a positive voltage across the inductor. The inductor current
increases until the current sense signal exceeds the peak inductor
current threshold, which turns off the high-side MOSFET switch.
This threshold is set by the error amplifier output. During the high-
side MOSFET off time, the inductor current decreases through
the low-side MOSFET until the next oscillator clock pulse starts
a new cycle.
Hysteresis Mode
In hysteresis mode, the buck regulator in the ADP5301 charges
the output voltage slightly higher than its nominal output voltage
with PWM pulses by regulating the constant peak inductor current.
When the output voltage increases until the output sense signal
exceeds the hysteresis upper threshold, the regulator enters standby
mode. In standby mode, the high-side and low-side MOSFETs and
a majority of the circuitry are disabled to allow a low quiescent
current as well as high efficiency performance.
During standby mode, the output capacitor supplies energy into
the load and the output voltage decreases until it falls below the
hysteresis comparator lower threshold. The buck regulator wakes
up and generates the PWM pulses to charge the output again.
Because the output voltage occasionally enters standby mode
and then recovers, the output voltage ripple in hysteresis mode
is larger than the ripple in PWM mode.
Mode Selection
The ADP5301 includes the SYNC/MODE pin to allow flexible
configuration in hysteresis mode or PWM mode.
When a logic high level is applied to the SYNC/MODE pin, the
buck regulator is forced to operate in PWM mode. In PWM mode,
the regulator can supply up to 500 mA of output current. The
regulator can provide lower output ripple and output noise in
PWM mode, which is useful for noise sensitive applications.
When a logic low level is applied to the SYNC/MODE pin, the buck
regulator is forced to operate in hysteresis mode. In hysteresis mode,
the regulator draws only 180 nA of quiescent current typical to
regulate the output under zero load, which allows the regulator to
act as a keep-alive power supply in a battery-powered system. In
hysteresis mode, the regulator supplies up to 50 mA of output cur-
rent with a relatively large output ripple compared to PWM mode.
The user can alternate between hysteresis mode and PWM mode
during operation. The flexible configuration capability during
operation of the device enables efficient power management to
meet high efficiency and low output ripple requirements when
the system switches between active mode and standby mode.
OSCILLATOR AND SYNCHRONIZATION
The ADP5301 operates at a 2 MHz switching frequency typical
in PWM operation mode.
The switching frequency of the ADP5301 can be synchronized to
an external clock with a frequency range from 1.2 MHz to
2.5 MHz. The ADP5301 automatically detects the presence of an
external clock applied to the SYNC/MODE pin, and the switching
frequency transitions to the frequency of the external clock. When
the external clock signal stops, the device automatically switches
back to the internal clock.
ADJUSTABLE AND FIXED OUTPUT VOLTAGES
The ADP5301 provides adjustable output voltage settings by
connecting one resistor through the VID pin to AGND. The
VID detection circuitry works in the start-up period, and the
voltage ID code is sampled and held into the internal register
and does not change until the next power recycle. Furthermore,
the ADP5301 provides a fixed output voltage programmed via
the factory fuse. In this condition, connect the VID pin to the
PVIN pin.
For the output voltage settings, the feedback resistor divider is
built into the ADP5301, and the feedback pin (FB) must be tied
directly to the output. An ultralow power voltage reference and
an integrated high impedance (50 MΩ typical) feedback divider
network contribute to the low quiescent current. Table 5 lists
the output voltage options by the VID pin configurations.
Table 5. Output Voltage (VOUT) Options Using the VID Pin
VID Configuration
VOUT (V)
Factory Option 0
Factory Option 1
Short to Ground
3.0
3.1
Short to PVIN
2.5
1.3
RVID = 499 kΩ
3.6
5.0
RVID = 316 kΩ
3.3
4.5
RVID = 226 kΩ
2.9
4.2
RVID = 174 kΩ
2.8
3.9
RVID = 127 kΩ
2.7
3.4
RVID = 97.6 kΩ
2.6
3.2
RVID = 76.8 kΩ
2.4
1.9
RVID = 56.2 kΩ
2.3
1.7
RVID = 43 kΩ
2.2
1.6
RVID = 32.4 kΩ
2.1
1.4
RVID = 25.5 kΩ
2.0
1.1
RVID = 19.6 kΩ
1.8
1.0
RVID = 15 kΩ
1.5
0.9
RVID = 11.8 kΩ
1.2
0.8



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