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MP171 Datenblatt(PDF) 14 Page - Monolithic Power Systems

Teilenummer MP171
Bauteilbeschribung  700 V Non-Isolated Off-Line Regulator Up to 60 mA Output Current
PDF  20 Pages
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Hersteller  MPS [Monolithic Power Systems]
Direct Link  http://www.monolithicpower.com
Logo MPS - Monolithic Power Systems

MP171 Datenblatt(HTML) 14 Page - Monolithic Power Systems

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MP171 –NON-ISOLATED OFFLINE REGULATOR
MP171 Rev. 1.0
www.MonolithicPower.com
14
9/30/2015
MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited.
© 2015 MPS. All Rights Reserved.
oo
oo
FB
12
o
1
2
o
VC
V
C
1
C
2R
R
I
R
R
I


(11)
Dummy Load
A dummy load is required to maintain the load
regulation. This ensures there is sufficient
inductor energy to charge the sample and hold
capacitor to detect the output voltage. Normally,
a 3 mA dummy load is needed and can be
adjusted according to the regulated voltage.
There is a compromise between small, no-load
consumption and good, no-load regulation,
especially for applications that require 30 mW no-
load consumption. Use a Zener to reduce no-
load consumption if no-load regulation is not a
concern.
Auxiliary VCC Supply
MP171
VCC
FB
SOURCE
SOURCE
C2
R1
R2
D2
C3
L1
VOUT
R3 D3
Figure 7—Auxiliary VCC supply circuit
For applications with VO above 7 V, the MP171
achieves the 30 mW no-load power requirement
by adopting an external VCC supply to reduce
power consumption on the internal VCC regulator
(see Figure 7).
This auxiliary VCC supply is derived from the
resistor connected between C2 and C3. C3
should
be
set
larger
than
the
value
recommendation above. D3 is used in case VCC
interferes with FB. R3 is determined using
Equation (12):
oFW
S
VV
5.8V
R3
I

                                                 (12) 
Where IS is the VCC consumption under a no-
load condition, and VFW is the forward voltage
drop of D3. Because IS varies in different
applications, R3 should be adjusted to meet the
application’s
specific
IS.
In
a
particular
configuration, IS is measured at about 200 µA.
Surge Performance
An appropriate input capacitor value should be
chosen to obtain good surge performance. Figure
8 shows the half-wave rectifier. Table 2 shows
the capacitance required under normal conditions
for different surge voltages. FR1 is a 20 Ω/2 W
fused resistor, and L1 is 1 mH for this
recommendation.
L1
C1
C2
N
L
FR1
Figure 8—Half-wave rectifier
Table 2—Recommended capacitance
Surge
Voltage
500 V
1000 V
2000 V
C1
1 μF
2.2 μF
3.3 μF
C2
1 μF
2.2 μF
3.3 μF
PCB Layout Guidelines
Efficient PCB layout is critical for reliable
operation, good EMI, and thermal performance.
For best results, follow the guidelines below:
1) Minimize the loop area formed by the input
capacitor, IC, freewheeling diode, inductor,
and output capacitor.
2) Place the power inductor far away from the
input filter while keeping the loop area to the
inductor at a minimum (see example below).
3) Place a capacitor valued at several hundred
pF between FB and SOURCE as close to the
IC as possible.
4) Connect the exposed pads or large copper
area
with
DRAIN
to
improve
thermal
performance.



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