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LM2830XMF/NOPB датащи(PDF) 16 Page - Texas Instruments

номер детали LM2830XMF/NOPB
подробное описание детали  LM2830/-Q1 High-Frequency 1.0-A Load Step-Down DC-DC Regulator
PDF  38 Pages
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LM2830XMF/NOPB датащи(HTML) 16 Page - Texas Instruments

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PCOND= (IOUT
2 x D)
1
3
1 +
x
iL
IOUT
2
RDSON
LM2830, LM2830-Q1
SNVS454E – AUGUST 2006 – REVISED DECEMBER 2014
www.ti.com
Another significant external power loss is the conduction loss in the output inductor. The equation can be
simplified to:
PIND = IOUT
2 × R
DCR
(20)
The conduction loss of the LC2830 device is mainly associated with the internal PFET:
(21)
If the inductor ripple current is fairly small, the conduction losses can be simplified to:
PCOND = IOUT
2 × R
DSON × D
(22)
Switching losses are also associated with the internal PFET. They occur during the switch on and off transition
periods, where voltages and currents overlap resulting in power loss. The simplest means to determine this loss
is to empirically measuring the rise and fall times (10% to 90%) of the switch at the switch node.
Switching Power Loss is calculated as follows:
PSWR = 1/2(VIN × IOUT × FSW × TRISE)
(23)
PSWF = 1/2(VIN × IOUT × FSW × TFALL)
(24)
PSW = PSWR + PSWF
(25)
Another loss is the power required for operation of the internal circuitry:
PQ = IQ × VIN
(26)
IQ is the quiescent operating current, and is typically around 3.3 mA for the 1.6-MHz frequency option.
Table 2 lists typical application power losses.
Table 2. Power Loss Tabulation
Design Parameter
Value
Design Parameter
Value
VIN
5.0 V
VOUT
3.3 V
POUT
3.3 W
IOUT
1.0A
VD
0.45 V
PDIODE
150 mW
FSW
1.6 MHz
IQ
3.3 mA
PQ
17 mW
TRISE
4 nS
PSWR
6 mW
TFALL
4 nS
PSWF
6 mW
RDS(ON)
150 m
PCOND
100 mW
INDDCR
70 m
PIND
70 mW
D
0.667
PLOSS
345 mW
η
88%
PINTERNAL
125 mW
ΣPCOND + PSW + PDIODE + PIND + PQ = PLOSS
(27)
ΣPCOND + PSWF + PSWR + PQ = PINTERNAL
(28)
PINTERNAL = 125mW
(29)
16
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Product Folder Links: LM2830 LM2830-Q1



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