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AAT3221IJS-2.6-T1 View Datasheet(PDF) - Advanced Analog Technology, Inc.

Part Name
Description
MFG CO.
AAT3221IJS-2.6-T1
AAT
Advanced Analog Technology, Inc. AAT
'AAT3221IJS-2.6-T1' PDF : 18 Pages View PDF
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AAT3221/2
150mA NanoPower™ LDO Linear Regulator
Device Duty Cycle vs. VDROP
(VOUT = 2.5V @ 25°C)
3.5
3
2.5
2
1.5
1
0.5
0
0
200mA
10 20 30 40 50 60 70 80 90 100
Duty Cycle (%)
Device Duty Cycle vs. VDROP
(VOUT = 2.5V @ 50°C)
3.5
3
2.5
200mA
2
150mA
1.5
1
0.5
0
0
10 20 30 40 50 60 70 80 90 100
Duty Cycle (%)
Device Duty Cycle vs. VDROP
(VOUT = 2.5V @ 85°C)
3.5
3
100mA
2.5
2
200mA
1.5
1
150mA
0.5
0
0 10 20 30 40 50 60 70 80 90 100
Duty Cycle (%)
High Peak Output Current Applications
Some applications require the LDO regulator to
operate at continuous nominal levels with short
duration, high-current peaks. The duty cycles for
both output current levels must be taken into
account. To do so, one would first need to calcu-
late the power dissipation at the nominal continu-
ous level, then factor in the addition power dissipa-
tion due to the short duration, high-current peaks.
For example, a 2.5V system using an AAT3221/
2IGV-2.5-T1 operates at a continuous 100mA load
current level and has short 150mA current peaks.
The current peak occurs for 378µs out of a 4.61ms
period. It will be assumed the input voltage is 5.0V.
First, the current duty cycle percentage must be
calculated:
% Peak Duty Cycle: X/100 = 378ms/4.61ms
% Peak Duty Cycle = 8.2%
The LDO regulator will be under the 100mA load
for 91.8% of the 4.61ms period and have 150mA
peaks occurring for 8.2% of the time. Next, the
continuous nominal power dissipation for the
100mA load should be determined then multiplied
by the duty cycle to conclude the actual power dis-
sipation over time.
PD(MAX) = (VIN - VOUT)IOUT + (VIN x IGND)
PD(100mA) = (5.0V - 2.5V)100mA + (5.0V x 1.1mA)
PD(100mA) = 250mW
PD(91.8%D/C) = %DC x PD(100mA)
PD(91.8%D/C) = 0.918 x 250mW
PD(91.8%D/C) = 229.5mW
3221.2005.12.1.11
13
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