Input Voltage 24V models 48V models
Continuous 0 to +36V 0 to +75V
Transient (100 mS) +50V +100V
On/Off Control –0.3 V min to +13.5V max.
Input Reverse Polarity Protection See Fuse section
Output Overvoltage VOUT +20% max.
Output Current (Note 7) Current-limited. Devices can withstand
sustained short circuit without damage.
Storage Temperature –55 to +125°C
Lead Temperature See soldering guidelines
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/Func-
tional Specifi cations Table is not implied nor recommended.
(1) All models are tested and specifi ed with 200 LFM airfl ow, external 1||10µF ceramic/
tantalum output capacitors. External input capacitance varies according to model type.
All capacitors are low ESR types. These capacitors are necessary to accommodate
our test equipment and may not be required to achieve specifi ed performance in your
applications. All models are stable and regulate within spec under no-load conditions.
General conditions for Specifi cations are +25°C, VIN =nominal, VOUT = nominal, full load.
(2) Input Ripple Current is tested and specifi ed over a 5-20MHz bandwidth. Input fi lter-
ing is CIN = 33µF tantalum, CBUS = 220µF electrolytic, LBUS = 12µH.
(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.
(4) Mean Time Before Failure is calculated using the Telcordia (Belcore) SR-332 Method1,
Case 3, ground fi xed conditions, TPCBOARD = +25°C, full output load, natural air
convection.
(5) The On/Off Control may be driven with external logic or by applying appropriate
external voltages which are referenced to Input Common. The On/Off Control Input
should use either an open collector/open drain transistor or logic gate which does
not exceed +13.5V.
(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.
(9) All models are fully operational and meet published specifi cations, including “cold
start” at –40°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) Overvoltage shutdown on 48V input models is not supplied in order to comply with
telecom reliability requirements. These requirements attempt continued operation
despite signifi cant input overvoltage.
(12) Do not exceed maximum power specifi cations when adjusting the output trim.
(13) Note that the converter may operate up to +110°C with the baseplate installed.
However, thermal self-protection occurs near +110°C, and there is a temperature
gradient between the hotspot and the baseplate. Therefore, +100°C is recom-
mended to avoid thermal shutdown.
(14) The converter is guaranteed to turn off at the UV shutdown voltage.
(15) At full power, the package temperature of all on-board components must not exceed
+128°C.
ABSOLUTE MAXIMUM RATINGS
Removal of Soldered UVQs from Printed Circuit Boards
Should removal of the UVQ from its soldered connection be needed, thoroughly
de-solder the pins using solder wicks or de-soldering tools. At no time should
any prying or leverage be used to remove boards that have not been properly
de-soldered fi rst.
Input Source Impedance
UVQ converters must be driven from a low ac-impedance input source. The
DC-DC’s performance and stability can be compromised by the use of highly
inductive source impedances. The input circuit shown in Figure 2 is a practical
solution that can be used to minimize the effects of inductance in the input
traces. For optimum performance, components should be mounted close to
the DC-DC converter.
I/O Filtering, Input Ripple Current, and Output Noise
All models in the UVQ Series are tested/specifi ed for input ripple current (also
called input refl ected ripple current) and output noise using the circuits and
layout shown in Figures 2 and 3.
Figure 2. Measuring Input Ripple Current
CINVIN CBUS
LBUS
CIN = 33µF, ESR < 700m @ 100kHz
CBUS = 220µF, ESR < 100m @ 100kHz
LBUS = 12µH
1
3
+VIN
–VIN
CURRENT
PROBE
TO
OSCILLOSCOPE
+
–
External input capacitors (CIN in Figure 2) serve primarily as energy-storage
elements. They should be selected for bulk capacitance (at appropriate fre-
quencies), low ESR, and high rms-ripple-current ratings. The switching nature
of DC-DC converters requires that dc voltage sources have low ac impedance
as highly inductive source impedance can affect system stability. In Figure 2,
CBUS and LBUS simulate a typical dc voltage bus. Your specifi c system confi gura-
tion may necessitate additional considerations.
TECHNICAL NOTES
MDC_UVQ Models.D01 Page 19 of 25
UVQ Series
Low Profi le, Isolated Quarter Brick
2.5–40 Amp DC-DC Converters
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