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ADP5140WACCZ-R7 Datenblatt(PDF) 57 Page - Analog Devices

Teilenummer ADP5140WACCZ-R7
Bauteilbeschribung  Power Management IC for Automotive Application
PDF  128 Pages
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ADP5140WACCZ-R7 Datenblatt(HTML) 57 Page - Analog Devices

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Data Sheet
ADP5140
Rev. 0 | Page 57 of 128
Output Capacitor Selection for the LDO Regulators
The output capacitance of the LDO regulators depends mainly
on the load current. Generally, a large load current requires a
large output capacitance to achieve a stable output voltage. A
higher capacitor value improves the transient response of the
LDO regulators to large changes in the load current.
Ceramic capacitors with a typical value of 1 μF to 10 μF are
recommended as the output capacitors of the LDO regulators
in the ADP5140.
LOW OUTPUT NOISE DESIGN OF BUCK4
In typical system application of the ADP5140, BUCK4 provides
power for the power amplifier, which requires low noise input.
BUCK4 in the ADP5140 optimizes the internal analog blocks and
uses low noise reference architecture to achieve lower output
noise. When the system design requires BUCK4 of the ADP5140
to power the power amplifier directly without the LDO regulator,
it is highly recommended to add an additional secondary LC
filter after the primary LC filter to filter the fundamental
switching ripple further and achieve lower output noise in the
noise sensitive frequency range of the power amplifier.
Because the secondary LC filter generates voltage drop when
the load increases, an inductor with a small dc current
resistance (DCR) is recommended to minimize the voltage
drop, especially for a high current application.
There is a hybrid feedback method, as shown in Figure 95,
which provides an adequate stability margin and maintains the
output accuracy over all load conditions in the application
where the secondary LC filter of BUCK4 is added.
CF
RF
CSEC_F
RESR_F
RL
LSEC_F
VOUT4
SW4
FB4
PGND
Figure 95. Hybrid Feedback Method of BUCK4 With Secondary LC Filter
To maintain the loop stability of BUCK4 when using the hybrid
feedback method, the value constrains of the components shown
in the following equation must be met:
_
_
_
_
_
SEC F
SEC F
SEC F
SEC F
FF
ESR F
L
C
R
L
C
RC
R
L
×
×>
where:
RF is the feedback resistor.
CF is the feedback capacitor.
LSEC_F is the inductor of the secondary LC filter.
CSEC_F is the capacitor of the secondary LC filter.
RESR_F is the equivalent series resistance of CSEC_F.
RL is the load resistance.
Note that larger RF and CF values degrade the load transient
performance of BUCK4 because RF and CF work as an RC filter
of the output voltage during load transient. It is recommended
that RF × CF be 20% to 30% larger than the minimum limitation
value shown in the previous equation to balance the loop
stability and load transient performance.
VOLTAGE CONVERSION LIMITATIONS
There is a minimum on time and a minimum off time for each
switching regulator. The voltage conversion between the input
voltage and output voltage of each switching regulator has
limitations.
Buck Regulator
The minimum output voltage of a buck regulator for a given
input voltage and switching frequency is constrained by the
minimum on time of the buck regulator and can be calculated
using the following equation:
VOUT_MIN = VIN × tMIN_ON × fSW − (RDSON_HS − RDSON_LS) ×
IOUT_MIN × tMIN_ON × fSW − (RDSON_LS + RL) × IOUT_MIN
where:
VOUT_MIN is the minimum output voltage.
VIN is the input voltage.
tMIN_ON is the minimum on time.
RDSON_HS is the high-side MOSFET on resistance.
RDSON_LS is the low-side MOSFET on resistance.
IOUT_MIN is the minimum output current.
RL is the series resistance of output inductor.
The maximum output voltage of a buck regulator for a given
input voltage and switching frequency is constrained by the
minimum off time of the buck regulator and can be calculated
using the following equation:
VOUT_MAX = VIN × (1 − tMIN_OFF × fSW) − (RDSON_HS − RDSON_LS) ×
IOUT_MAX × (1 − tMIN_OFF × fSW) − (RDSON_LS + RL) × IOUT_MAX
where:
VOUT_MAX is the maximum output voltage.
tMIN_OFF is the minimum off time.
IOUT_MAX is the maximum output current.
Boost Regulator
The maximum input voltage of the boost regulator for a given
output voltage and switching frequency is constrained by the
minimum on time of the boost regulator and can be calculated
using the following equation:
VIN_MAX = VOUT × (1 − tMIN_ON × fSW) + IOUT_MIN × (RDSON_MAIN ×
(1 − tMIN_ON × fSW) + RL + tMIN_ON × fSW × RDSON_SYNC)/
(1 − tMIN_ON × fSW)
where:
VIN_MAX is the maximum input voltage.
VOUT is the output voltage.
tMIN_ON is the minimum on time.
IOUT_MIN is the minimum output current.
RDSON_MAIN is the main MOSFET on resistance.



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