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ADP5054ACPZ-R7 Folha de dados(PDF) 16 Page - Analog Devices

Nome de Peças ADP5054ACPZ-R7
Descrição Electrónicos  Quad Buck Regulator Integrated Power Solution
PDF  31 Pages
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Fabricante Electrônico  AD [Analog Devices]
Página de início  http://www.analog.com
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ADP5054ACPZ-R7 Folha de dados(HTML) 16 Page - Analog Devices

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ADP5054
Data Sheet
Rev. B | Page 16 of 31
The frequency in each channel can be set to half the master
switching frequency set by the RT pin. This setting is configured
using the CFG12 and CFG34 pins (see Table 8 and Table 9). This
halving of the frequency is not recommended if the switching
frequency is less than 250 kHz.
Phase Shift
By default, the phase shift between Channel 1 and Channel 2 and
between Channel 3 and Channel 4 is 180° (see Figure 31). This
value provides the benefits of out-of-phase operation by reducing
the input ripple current and lowering the grounding noise.
CHANNEL 2
fSW
OPTIONAL)
CHANNEL 1
fSW
OPTIONAL)
CHANNEL 4
fSW
OPTIONAL)
180° PHASE SHIFT
180° PHASE SHIFT
0° REFERENCE
0° REFERENCE
CHANNEL 3
fSW
OPTIONAL)
Figure 31. Phase Shift Diagram, Four Buck Regulators
SYNCHRONIZATION INPUT/OUTPUT
The switching frequency of the ADP5054 can be synchronized
to an external clock with a frequency range from 250 kHz to
2.0 MHz. The ADP5054 automatically detects the presence of
an external clock applied to the SYNC/MODE pin, and the
switching frequency transitions smoothly to the frequency of
the external clock. When the external clock signal stops, the
device automatically switches back to the internal clock and
continues to operate.
Note that the internal switching frequency set by the RT pin
must be programmed to a value that is close to the external
clock value for successful synchronization; the suggested
frequency difference is less than ±15% in typical applications.
The SYNC/MODE pin can be configured as a synchronization
clock output using CFG34 (see Table 9). A positive clock pulse
with a 50% duty cycle is generated at the SYNC/MODE pin
with a frequency equal to the internal switching frequency set
by the RT pin. There is a short delay time (approximately 15%
of tSW) from the generated synchronization clock to the
Channel 1 switching node.
Figure 32 shows two ADP5054 devices configured for frequency
synchronization mode: one ADP5054 device is configured as
the clock output to synchronize another ADP5054 device. It is
recommended that a 100 kΩ pull-up resistor be used to prevent
logic errors when the SYNC/MODE pin is left floating.
100kΩ
VREG
SYNC/MODE
SYNC/MODE
Figure 32. Two ADP5054 Devices Configured for Synchronization Mode
In the configuration shown in Figure 32, the phase shift between
Channel 1 of the first ADP5054 device and Channel 1 of the
second ADP5054 device is 0° (see Figure 33).
CH3 5.00V BW
CH1 2.00V BW
CH2 5.00V BW
M400ns
A CH1
560mV
1
2
3
SW1
AT FIRST
ADP5054
SW1
AT SECOND
ADP5054
SYNC
OUTPUT
AT FIRST
ADP5054
Figure 33. Waveforms of Two ADP5054 Devices Operating in
Synchronization Mode
Table 8. CFG12 Configuration (Channel 1 and Channel 2)1
Channel 1
Channel 2
RTOP (kΩ)
RBOT (kΩ)
Soft Start (ms)
Frequency (kHz)
Soft Start (ms)
Frequency (kHz)
Parallel or Individual Operation
0
N/A
16
1 × fSW
16
1 × fSW
Individual
100
600
16
½ × fSW
16
½ × fSW
Individual
200
500
2
1 × fSW
2
½ × fSW
Individual
300
400
2
½ × fSW
2
1 × fSW
Individual
400
300
16
½ × fSW
N/A
N/A
Parallel
500
200
16
1 × fSW
N/A
N/A
Parallel
600
100
2
1 × fSW
N/A
N/A
Parallel
N/A
0
2
1 × fSW
2
1 × fSW
Individual
1
N/A means not applicable.



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