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NB679GD Datasheet(PDF) 16 Page - Monolithic Power Systems

Part # NB679GD
Description  28V, Low IQ, Fixed 5.1V, 8A, Synchronous Buck Converter with 100mA LDO and LP# VOUT Scaling
PDF  19 Pages
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Manufacturer  MPS [Monolithic Power Systems]
Direct Link  http://www.monolithicpower.com
Logo MPS - Monolithic Power Systems

NB679GD Datasheet(HTML) 16 Page - Monolithic Power Systems

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NB679A
–28V VIN, FIXED 5.1V-8A BUCK CONVERTER WITH LDO AND LP# VOUT SCALING
NB679A Rev. 1.03
www.MonolithicPower.com
16
7/27/2017
MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited.
© 2017 MPS. All Rights Reserved.
APPLICATION INFORMATION
Input Capacitor
The input current to the step-down converter is
discontinuous, and therefore requires a capacitor
to supply the AC current to the step-down
converter while maintaining the DC input voltage.
Ceramic capacitors are recommended for best
performance and should be placed as close to
VIN as possible. Capacitors with X5R and X7R
ceramic dielectrics are recommended because
they
are
fairly
stable
with
temperature
fluctuations.
The capacitors must have a ripple current rating
greater than the maximum input ripple current of
the converter. The input ripple current can be
estimated using Equation (3) and Equation (4):
OUT
OUT
CIN
OUT
IN
IN
VV
I
I
(1
)
VV
 
(3)
The worst-case condition occurs at VIN = 2VOUT,
where:
OUT
CIN
I
I
2
(4)
For simplification, choose an input capacitor with
an RMS current rating greater than half of the
maximum load current.
The input capacitor value determines the input
voltage ripple of the converter. If there is an input
voltage ripple requirement in the system, choose
the input capacitor that meets the specification.
The input voltage ripple can be estimated using
Equation (5) and Equation (6):
OUT
OUT
OUT
IN
SW
IN
IN
IN
I
V
V
V
(1
)
F
C
V
V
 
(5)
The worst-case conditions occur at VIN = 2VOUT,
where:
OUT
IN
SW
IN
I
1
V
4
F
C
 
(6)
Output Capacitor
An output capacitor is required to maintain the
DC
output
voltage.
Ceramic
or
POSCAP
capacitors are recommended. The output voltage
ripple can be estimated using Equation (7):
OUT
OUT
OUT
ESR
SW
IN
SW
OUT
VV
1
V
(1
) (R
)
F
L
V
8 F
C
 
(7)
When using ceramic capacitors, the impedance
at the switching frequency is dominated by the
capacitance. The output voltage ripple is caused
mainly by the capacitance. For simplification, the
output voltage ripple can be estimated using
Equation (8):
OUT
OUT
OUT
2
SW
OUT
IN
VV
V
(1
)
8 F
L C
V
 
 
(8)
When using POSCAP capacitors, the ESR
dominates
the
impedance
at
the
switching
frequency.
The
output
ripple
can
be
approximated with Equation (9):
OUT
OUT
OUT
ESR
SW
IN
VV
V
(1
) R
F
L
V
 
(9)
The maximum output capacitor limitation should
be considered in design application. For a small
soft-start time period (if the output capacitor
value is too high), the output voltage cannot
reach the design value during the soft-start time,
causing it to fail to regulate. The maximum output
capacitor
value
(Co_max)
can
be
limited
approximately with Equation (10):
O _ MAX
LIM _ AVG
OUT
ss
OUT
C
(I
I
) T / V
(10)
Where, ILIM_AVG is the average start-up current
during a soft-start period, and Tss is the soft-start
time.
Inductor
The inductor is necessary to supply constant
current to the output load while being driven by
the switched input voltage. A larger value
inductor results in less ripple current, resulting in
a lower output ripple voltage. However, a larger
value inductor has a larger physical footprint, a
higher
series
resistance,
and/or
a
lower
saturation current. A good rule for determining
the inductance value is to design the peak-to-
peak ripple current in the inductor to be in the
range of 30% to 50% of the maximum output
current, with the peak inductor current below the
maximum
switching
current
limit.



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