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ADP1720ARMZ-5-R7 数据表(PDF) 12 Page - Analog Devices

部件名 ADP1720ARMZ-5-R7
功能描述  50 mA, High Voltage, Micropower Linear Regulator
PDF  16 Pages
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制造商  AD [Analog Devices]
网页  http://www.analog.com
标志 AD - Analog Devices

ADP1720ARMZ-5-R7 数据表(HTML) 12 Page - Analog Devices

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ADP1720
Rev. A | Page 12 of 16
THERMAL CONSIDERATIONS
To guarantee reliable operation, the junction temperature of the
ADP1720 must not exceed 125°C. To ensure the junction tem-
perature stays below this maximum value, the user needs to be
aware of the parameters that contribute to junction temperature
changes. These parameters include ambient temperature, power
dissipation in the power device, and thermal resistances between
the junction and ambient air (θJA). The θJA number is dependent
on the package assembly compounds used and the amount of
copper to which the GND pins of the package are soldered on the
PCB. Table 5 shows typical θJA values of the 8-lead MSOP package
for various PCB copper sizes.
Table 5.
Copper Size (mm2)
θJA (°C/W)
01
118
50
99
100
77
300
75
500
74
140
0
028
VIN – VOUT (V)
1 Device soldered to minimum size pin traces.
The junction temperature of the ADP1720 can be calculated
from the following equation:
TJ = TA + (PD × θJA)
(3)
where:
TA is the ambient temperature.
PD is the power dissipation in the die, given by
PD = [(VIN – VOUT) × ILOAD] + (VIN × IGND)
(4)
where:
ILOAD is the load current.
IGND is the ground current.
VIN and VOUT are input and output voltages, respectively.
Power dissipation due to ground current is quite small and
can be ignored. Therefore, the junction temperature equation
simplifies to the following:
TJ = TA + {[(VIN – VOUT) × ILOAD] × θJA}
(5)
As shown in Equation 5, for a given ambient temperature,
input-to-output voltage differential, and continuous load
current, there exists a minimum copper size requirement for
the PCB to ensure that the junction temperature does not rise
above 125°C. Figure 22 to Figure 27 show junction temperature
calculations for different ambient temperatures, load currents,
VIN to VOUT differentials, and areas of PCB copper.
120
100
80
60
40
20
1mA
5mA
10mA
20mA
30mA
40mA
50mA
(LOAD CURRENT)
MAX TJ (DO NOT OPERATE ABOVE THIS POINT)
4
8
12
16
20
24
Figure 22. 300 mm2 of PCB Copper, TA = 25°C
140
0
02
VIN – VOUT (V)
8
120
100
80
60
40
20
1mA
5mA
10mA
20mA
30mA
40mA
50mA
(LOAD CURRENT)
4
8
12
16
20
24
MAX TJ (DO NOT OPERATE ABOVE THIS POINT)
Figure 23. 100 mm2 of PCB Copper, TA = 25°C
140
0
02
VIN – VOUT (V)
8
120
100
80
40
20
60
1mA
5mA
10mA
20mA
30mA
40mA
50mA
(LOAD CURRENT)
4
8
12
16
20
24
MAX TJ (DO NOT OPERATE ABOVE THIS POINT)
Figure 24. 0 mm2 of PCB Copper, TA = 25°C



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