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EC3221 Datasheet(PDF) 15 Page - E-CMOS Corporation

Part # EC3221
Description  1.5MHz, Dual 1.5A, Synchronous Step-Down Regulator
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Manufacturer  E-CMOS [E-CMOS Corporation]
Direct Link  http://www.ecmos.com.tw/
Logo E-CMOS - E-CMOS Corporation

EC3221 Datasheet(HTML) 15 Page - E-CMOS Corporation

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1.5MHz, Dual 1.5A, Synchronous
Step-Down Regulator
EC3221
E-CMOS Corp. (www.ecmos.com.tw)
Page 15 of 16
3F18N-Rev.P001
Function Description (Cont.)
Therefore,
power dissipated by the part is:
PD = ILOAD
2 • RDS(ON) = 187.2mW
For the SOT23 package, the qJA is 250°C/ W. Thus, the
junction temperature of the regulator is:
TJ = 70°C + (0.1872)(250) = 116.8°C
which is below the maximum junction temperature of
125°C.
Note that at higher supply voltages, the junction
temperature is lower due to reduced switch resistance
(RDS(ON)).
Checking Transient Response
The regulator loop response can be checked by looking
at the load transient response. Switching regulators take
several cycles to respond to a step in load current. When
a load step occurs, VOUT immediately shifts by an
amount equal to (
ΔILOAD • ESR), where ESR is the
effective series resistance of COUT.
ΔILOAD also begins
to charge or discharge COUT, which generates a
feedback error signal. The regulator loop then acts to
return VOUT to its steady state value. During this
recovery time VOUT can be monitored for overshoot or
ringing that would indicate a stability problem.
A second, more severe transient is caused by switching
in loads with large (>1
μF) supply bypass capacitors. The
discharged bypass capacitors are effectively put in
parallel with COUT, causing a rapid drop in VOUT. No
regulator can deliver enough current to prevent this
problem if the load switch resistance is low and it is
driven quickly. The only solution is to limit the rise time of
the switch drive so that the load rise time is limited to
approximatel
y (25 • CLOAD).Thus, a 10μF capacitor
charging to 3.3V would require a 250
μs rise time, limiting
the charging current to about 130mA.


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