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MPQ4559DN Datenblatt(PDF) 14 Page - Monolithic Power Systems

Teilenummer MPQ4559DN
Bauteilbeschribung  Industrial Grade, 1.5A, 2MHz, 55V Step-Down Converter AEC-Q100 Qualified
PDF  19 Pages
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Hersteller  MPS [Monolithic Power Systems]
Direct Link  http://www.monolithicpower.com
Logo MPS - Monolithic Power Systems

MPQ4559DN Datenblatt(HTML) 14 Page - Monolithic Power Systems

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MPQ4559
– 1.5A, 2MHz, 55V STEP-DOWN CONVERTER AEC-Q100 QUALIFIED
MPQ4559 Rev. 1.01
www.MonolithicPower.com
14
6/9/2013
MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited.
© 2013 MPS. All Rights Reserved.
The
system
may
have
another
zero
of
importance, if the output capacitor has a large
capacitance and/or a high ESR value. The zero,
due to the ESR and capacitance of the output
capacitor, is located at:

ESR
ESR
1
f
2
π C2 R
In this case, a third pole set by the compensation
capacitor (C5) and the compensation resistor
(R3) is used to compensate the effect of the ESR
zero on the loop gain. This pole is located at:

P3
1
f
2
π C5 R3
The goal of compensation design is to shape the
converter transfer function to get a desired loop
gain. The system crossover frequency where the
feedback loop has the unity gain is important.
Lower crossover frequencies result in slower line
and load transient responses, while higher
crossover
frequencies
could
cause
system
unstable. A good rule of thumb is to set the
crossover frequency to approximately one-tenth
of the switching frequency.
Table 3
—Compensation Values for Typical
Output Voltage/Capacitor Combinations
VOUT
(V)
L (µH)
C2
(µF)
R3
(kΩ)
C3
(pF)
C6
(pF)
1.8
4.7
33
32.4
680
None
2.5
4.7 - 6.8
22
26.1
680
None
3.3
6.8 -10
22
68.1
220
None
5
15 - 22
33
47.5
330
None
12
10
22
16
470
2
To optimize the compensation components for
conditions not listed in Table 3, the following
procedure can be used.
1. Choose the compensation resistor (R3) to set
the desired crossover frequency. Determine the
R3 value by the following equation:


C
OUT
EA
CS
FB
2
π C2 f
V
R3
G
G
V
Where fC is the desired crossover frequency.
2. Choose the compensation capacitor (C3) to
achieve
the
desired
phase
margin.
For
applications with typical inductor values, setting
the compensation zero, fZ1, below one forth of the
crossover frequency provides sufficient phase
margin. Determine the C3 value by the following
equation:

C
4
C3
2
π R3 f
3.
Determine
if
the
second
compensation
capacitor (C5) is required. It is required if the
ESR zero of the output capacitor is located at
less than half of the switching frequency, or the
following relationship is valid:

S
ESR
f
1
2
π C2 R
2
If this is the case, then add the second
compensation capacitor (C5) to set the pole fP3 at
the location of the ESR zero. Determine the C5
value by the equation:
ESR
C2 R
C5
R3
High Frequency Operation
The switching frequency of MPQ4559 can be
programmed up to 2MHz by an external resistor.
The minimum on time of MPQ4559 is about
100ns (typ). Pulse skipping operation can be
seen more easily at higher switching frequency
due to the minimum on time.
Since the internal bootstrap circuitry has higher
impedance, which may not be adequate to
charge the bootstrap capacitor during each
(1-D)×Ts charging period, an external bootstrap
charging diode is strongly recommended if the
switching frequency is about 2MHz (see External
Bootstrap
Diode
section
for
detailed
implementation information).



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