JW100D Lineage Power, JW100D Datasheet - Page 15
JW100D
Manufacturer Part Number
JW100D
Description
Manufacturer
Lineage Power
Datasheet
1.JW100D.pdf
(20 pages)
April 2008
Thermal Considerations
Heat Transfer with Heat Sinks
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 26. Case-to-ambient thermal resis-
tance vs. airflow is shown, for various heat sink config-
urations and heights, in Figure 32. These curves were
obtained by experimental testing of heat sinks, which
are offered in the product catalog.
Figure 32. Case-to-Ambient Thermal Resistance
These measured resistances are from heat transfer
from the sides and bottom of the module as well as the
top side with the attached heat sink; therefore, the
case-to-ambient thermal resistances shown are gener-
ally lower than the resistance of the heat sink by itself.
The module used to collect the data in Figure 32 had a
thermal-conductive dry pad between the case and the
heat sink to minimize contact resistance. The use of
Figure 32 is shown in the following example.
Lineage Power
θ
ca
8
7
6
5
4
3
2
1
0
=
0
Curves; Either Orientation
ΔT
-------------------- -
(100)
P
0.5
C max
,
D
AIR VELOCITY, m/s (ft./min.)
(200)
1.0
=
(
----------------------- -
T
D
(300)
C
1.5
):
P
dc-dc Converters; 36 to 75 Vdc Input, 2 Vdc Output; 20 W to 60 W
–
D
C, max
T
A
1 1/2 IN. HEAT SINK
1 IN. HEAT SINK
1/2 IN. HEAT SINK
1/4 IN. HEAT SINK
NO HEAT SINK
(continued)
)
(400)
2.0
) divided by the
(continued)
(500)
2.5
C
) is
(600)
8-1153 (C)
3.0
Example
If an 85 °C case temperature is desired, what is the
minimum airflow necessary? Assume the JW100D
module is operating at V
of 20 A, maximum ambient air temperature of 40 °C,
and the heat sink is 1/2 in.
Solution
Given: V
Determine P
Then solve the following equation:
Use Figure 32 to determine air velocity for the 1/2 inch
heat sink.
The minimum airflow necessary for the JW100D
module is 1.0 m/s (200 ft./min.).
θ
θ
θ
ca
ca
ca
I
T
T
Heat sink = 1/2 in.
P
O
=
=
=
A
C
I
D
= 54 V
= 20 A
= 40 °C
= 85 °C
= 14.3 W
3.1 °C/W
D
(
----------------------- -
(
----------------------- -
T
85 40
by using Figure 30:
14.3
C
P
–
–
D
T
A
)
)
I
= 54 V and an output current
15
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