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ADP2370ACPZ-2.5-R7 bảng dữ liệu(PDF) 30 Page - Analog Devices

tên linh kiện ADP2370ACPZ-2.5-R7
Giải thích chi tiết về linh kiện  High Voltage, 1.2 MHz/600 kHz, 800 mA
PDF  32 Pages
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nhà sản xuất  AD [Analog Devices]
Trang chủ  http://www.analog.com
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ADP2370ACPZ-2.5-R7 bảng dữ liệu(HTML) 30 Page - Analog Devices

Back Button ADP2370ACPZ-2.5-R7 Datasheet HTML 24Page - Analog Devices ADP2370ACPZ-2.5-R7 Datasheet HTML 25Page - Analog Devices ADP2370ACPZ-2.5-R7 Datasheet HTML 26Page - Analog Devices ADP2370ACPZ-2.5-R7 Datasheet HTML 27Page - Analog Devices ADP2370ACPZ-2.5-R7 Datasheet HTML 28Page - Analog Devices ADP2370ACPZ-2.5-R7 Datasheet HTML 29Page - Analog Devices ADP2370ACPZ-2.5-R7 Datasheet HTML 30Page - Analog Devices ADP2370ACPZ-2.5-R7 Datasheet HTML 31Page - Analog Devices ADP2370ACPZ-2.5-R7 Datasheet HTML 32Page - Analog Devices  
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ADP2370/ADP2371
Data Sheet
Rev. A | Page 30 of 32
0
0.2
0.6
0.4
0.8
1.0
TOTAL POWER DISSIPATION (W)
6400mm2
500mm2
100mm2
TJ MAX
85
95
105
115
125
135
Figure 89. Junction Temperature vs. Power Dissipation, TA = 85°C
In cases where the board temperature is known, use the thermal
characterization parameter, ΨJB, to estimate the junction temper-
ature rise. Maximum junction temperature (TJ) is calculated
from the board temperature (TB) and power dissipation (PD)
using the formula:
TJ = TB + (PD × ΨJB)
(5)
The typical ΨJB value for the 8-lead, 3 mm × 3 mm LFCSP is
22.2°C/W.
20
40
60
80
100
120
140
0
0.5
1.0
1.5
2.0
2.5
3.0
3.5
4.0
4.5
5.0
TOTAL POWER DISSIPATION (W)
25°C
50°C
65°C
85°C
TJ MAX
Figure 90. Junction Temperature vs. Power Dissipation,
Different Board Temperatures
PCB LAYOUT CONSIDERATIONS
Improve heat dissipation from the package by increasing
the amount of copper attached to the pins of the ADP2370/
ADP2371. However, as listed in Table 8, a point of diminishing
returns is eventually reached, beyond which an increase in the
copper size does not yield significant heat dissipation benefits.
Poor layout can affect the ADP2370/ADP2371 buck performance
causing electromagnetic interference (EMI), poor electromagnetic
compatibility (EMC) performance, ground bounce, and voltage
losses; thus, regulation and stability can be affected. Implement
a good PCB layout to ensure optimum performance by applying
the following rules:
Place the inductor, input capacitor, and output capacitor
close to the IC using short tracks. These components carry
high switching frequencies and long, large tracks act like
antennas.
Route the output voltage path away from the inductor and
SW node to minimize noise and magnetic interference.
Use a ground plane with several vias connected to the
component-side ground to reduce noise interference on
sensitive circuit nodes.
Use of 0402-size or 0603-size capacitors achieves the smallest
possible footprint solution on boards where area is limited.



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