QW050F1 Lineage Power, QW050F1 Datasheet - Page 13

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QW050F1

Manufacturer Part Number
QW050F1
Description
CONVERTER DC/DC 3.3V 33W OUT
Manufacturer
Lineage Power
Series
QWr
Type
Isolated with Remote On/Offr
Datasheet

Specifications of QW050F1

Output
3.3V
Number Of Outputs
1
Power (watts)
33W
Mounting Type
Through Hole
Voltage - Input
36 ~ 75V
Package / Case
8-DIP Module
1st Output
3.3 VDC @ 10A
Size / Dimension
2.28" L x 1.45" W x 0.50" H (57.9mm x 36.8mm x 12.7mm)
Power (watts) - Rated
33W
Operating Temperature
-40°C ~ 100°C
Efficiency
81%
Approvals
CE, CSA, UL, VDE
Lead Free Status / RoHS Status
Contains lead / RoHS non-compliant
3rd Output
-
2nd Output
-
4th Output
-

Available stocks

Company
Part Number
Manufacturer
Quantity
Price
Part Number:
QW050F1
Manufacturer:
LUCENT
Quantity:
57
Part Number:
QW050F1
Manufacturer:
HITACHI
Quantity:
452
Part Number:
QW050F133W
Manufacturer:
COILCRAFT
Quantity:
1 000
April 2008
Thermal Considerations
Heat Transfer Without Heat Sinks
(continued)
Figure 25. Forced Convection Power Derating with
Heat Transfer with Heat Sinks
The power modules have through-threaded, M3 x 0.5
mounting holes, which enable heat sinks or cold plates
to attach to the module. The mounting torque must not
exceed 0.56 N-m (5 in.-lb.). For a screw attachment
from the pin side, the recommended hole size on the
customer’s PWB around the mounting holes is 0.130
± 0.005 inches. If a larger hole is used, the mounting
torque from the pin side must not exceed 0.25 N-m
(2.2 in.-lbs.).
Thermal derating with heat sinks is expressed by using
the overall thermal resistance of the module. Total
module thermal resistance (θca) is defined as the max-
imum case temperature rise (ΔT
module power dissipation (P
The location to measure case temperature (T
shown in Figure 22. Case-to-ambient thermal resis-
tance vs. airflow is shown, for various heat sink config-
urations and heights, in Figures 26 and 27.
Longitudinal orientation is defined as the long axis of
the module that is parallel to the airflow direction,
whereas in the transverse orientation, the long axis is
perpendicular to the airflow. These curves were
obtained by experimental testing of heat sinks, which
are offered in the product catalog.
Lineage Power
θ
ca
20
15
10
5
0
0
=
No Heat Sink; Either Orientation
10
ΔT
---------------------
LOCAL AMBIENT TEMPERATURE, T
P
C max
20
,
D
30
=
40
(
----------------------- -
T
D
C
):
50
P
dc-dc Converters; 36 to 75 Vdc Input, 3.3 Vdc Output; 33 W to 50 W
D
C, max
T
A
60
(continued)
)
) divided by the
4.0 m/s (800 ft./min.)
3.5 m/s (700 ft./min.)
3.0 m/s (600 ft./min.)
2.5 m/s (500 ft./min.)
2.0 m/s (400 ft./min.)
1.5 m/s (300 ft./min.)
1.0 m/s (200 ft./min.)
0.5 m/s (100 ft./min.)
0.1 m/s (20 ft./min.)
NATURAL CONVECTION
70
A
80
(˚C)
C
) is
8-2306 (C).a
90
100
Figure 26. Case-to-Ambient Thermal Resistance
Figure 27. Case-to-Ambient Thermal Resistance
CONV
CONV
NAT
11
10
11
10
NAT
9
8
7
6
5
4
3
2
1
0
9
8
7
6
5
4
3
2
1
0
Curves; Transverse Orientation
Curves; Longitudinal Orientation
(100)
(100)
0.5
0.5
AIR VELOCITY, m/s (ft./min. )
AIR VELOCITY, m/s (ft./min.)
(200)
(200)
1.0
1.0
(300)
(300)
1.5
1.5
NO HEAT SINK
1/4 IN. HEAT SINK
1/2 IN. HEAT SINK
1 IN. HEAT SINK
NO HEAT SINK
1/4 IN. HEAT SINK
1/2 IN. HEAT SINK
1 IN. HEAT SINK
(400)
(400)
2.0
2.0
(500)
(500)
2.5
2.5
8-2107 (C)
8-2108 (C)
(600)
(600)
3.0
3.0
13

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