
UWE Series
Wide Input, Isolated
Eighth-Brick DC-DC Converters
MDC_UWE Series.E04 Page 6 of 23
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Input Voltage
Q12 Models - Volts, max. continuous
Volts, transient, 100 mSec
Q48 Models - Volts, max. continuous
Volts, transient, 100 mSec
0-36 VDC
0-50 VDC
0-75 VDC
0-100 VDC
On/Off Control -0.7 V. min to +15V max.
Input Reverse Polarity Protection See Fuse section.
Output Overvoltage Vout nom. +20% max.
Output Current (Note 7) Current-limited. Devices can
withstand sustained short circuit
without damage.
Overtemperature Protection Device includes electronic over-
temperature shutdown protection
under normal operation.
Storage Temperature -55 to +125° C.
Lead Temperature See soldering specifi cations
Absolute maximums are stress ratings. Exposure of devices to greater than any of these
conditions may adversely affect long-term reliability. Proper operation under conditions
other than those listed in the Performance/Functional Specifi cations Table is not implied or
recommended.
Absolute Maximum Ratings
CAUTION: This product is not internally fused. To comply with safety agency cer-
tifi cations and to avoid injury to personnel or equipment, the user must supply an
external fast-blow fuse to the input terminals. See fuse information.
1 All Q12 models are tested and specifi ed with external 1µF and 10µF paralleled
ceramic/tantalum output capacitors and a 100µF external input capacitor. Q48
models test with a 35µF input cap. All capacitors are low ESR types. Contact Murata
Power Solutions for details. These capacitors are necessary to accommodate our
test equipment and may not be required to achieve specifi ed performance in your
applications. However, Murata Power Solutions recommends using these capacitors
in your application. All models are stable and regulate within spec under no-load
conditions.
All specifi cations are typical unless noted. General conditions for Specifi cations are
+25° C, Vin=nominal, Vout=nominal, full load. Adequate airfl ow must be supplied
for extended testing under power.
2 Input Ripple Current is tested and specifi ed over a 5 Hz to 20 MHz bandwidth. Input
fi ltering is Cin=33 µF, Cbus=220 µF, Lbus=12 µH.
3 Note that Maximum Power Derating curves indicate an average current at nominal
input voltage. At higher temperatures and/or lower airfl ow, the DC-DC converter will
tolerate brief full current outputs if the total RMS current over time does not exceed
the Derating curve. All Derating curves are presented at sea level altitude. Be aware
that power dissipation degrades as altitude increases.
4a Mean Time Before Failure is calculated using the Telcordia (Belcore) SR-332 Method
1, Case 3, ISSUE 2, ground fi xed controlled conditions, Tambient=+25°C, full output
load, natural air convection.
4b Mean Time Before Failure is calculated using MIL-HDBK-217F, GB ground benign,
Tambient=+25°C, full output load, natural air convection.
5 The Remote On/Off Control is normally controlled by a switch or open collector or
open drain transistor. But it may also be driven with external logic or by applying
appropriate external voltages which are referenced to Input Common.
6 Short circuit shutdown begins when the output voltage degrades approximately 2%
from the selected setting.
7 The outputs are not intended to sink appreciable reverse current.
8 Output noise may be further reduced by adding an external fi lter. See I/O Filtering
and Noise Reduction. Larger caps (especially low-ESR ceramic capacitors) may
slow transient response or degrade stability. Use only as much output fi ltering as
needed to achieve your noise requirements and no more. Thoroughly test your
system under full load with all components installed.
9 All models are fully operational and meet published specifi cations, including “cold
start” at –40° C. At full power, the package temperature of all on-board components
must not exceed +128° C.
10 Regulation specifi cations describe the deviation as the line input voltage or output
load current is varied from a nominal midpoint value to either extreme.
11 If the user adjusts the output voltage, accuracy is dependent on user-supplied
trim resistors. To achieve high accuracy, use ±1% or better tolerance metal-fi lm
resistors. If no trim is installed, the converter will achieve its rated accuracy. Do not
exceed maximum power specifi cations when adjusting the output trim.
12 Output current limit and short circuit protection is non-latching. When the overcur-
rent fault is removed, the converter will immediately recover.
13 Alternate pin length and/or other output voltages may be available under special
quantity order.
14 At zero output current, the output may contain low frequency components which
exceed the ripple specifi cation. The output may be operated indefi nitely with no
load.
15 Input Fusing: If the input voltage is reversed, a body diode will conduct consider-
able current. Therefore, install an external protection fuse. To ensure reverse input
protection with full output load, always connect an external input fast-blow fuse in
series with the +Vin input. Use approximately twice the full input current rating at
the selected input voltage.
16 “Hiccup” overcurrent operation repeatedly attempts to restart the converter with a
brief, full-current output. If the overcurrent condition still exists, the restart current
will be removed and then tried again. This short current pulse prevents overheating
and damaging the converter. Once the fault is removed, the converter immediately
recovers normal operation.
17 Note that the converter will operate up to the rated baseplate maximum tempera-
ture with the baseplate installed and properly heat sunk. To avoid thermal self-
protection shutdown, do not exceed this maximum baseplate temperature.
18 UWE-24/3-Q12 undervoltage shutdown of 8.0V is at half load.
19 UWE-24/3-Q12 output overvoltage protection requires 0.3A minimum load.
20 Pre-bias operation: Startup will succeed if the output setpoint voltage is higher than
the pre-existing external output voltage.
SPECIFICATION NOTES
CALCULATED MTBF (TELCORDIA SR-332 METHOD, SEE NOTE 4A)
Model Hours
UWE-3.3/20-Q12 1,248,001
UWE-5/15-Q12 1,847,009
UWE-5/15-Q48 2,273,212
UWE-12/6-Q12 3,755,203
UWE-12/6-Q48 5,750,120
UWE-15/5-Q48 2,386,165
UWE-24/3-Q12 3,294,026
CALCULATED MTBF (MIL-HDBK-217N2 METHOD, SEE NOTE 4B)
UWE-3.3/20-Q12 1,089,141
UWE-5/15-Q12 1,936,627
UWE-5/15-Q48 1,657,518
UWE-12/6-Q12 1,239,521
UWE-12/6-Q48 828,714
UWE-15/5-Q48 2,112,625
UWE-24/3-Q12 2,623,370