参数资料
型号: LX1675ILQ-TR
厂商: MICROSEMI CORP-ANALOG MIXED SIGNAL GROUP
元件分类: 稳压器
英文描述: 1.5 A SWITCHING CONTROLLER, 690 kHz SWITCHING FREQ-MAX, PQCC38
封装: 5 X 7 MM, ROHS COMPLIANT, PLASTIC, MLPQ-38
文件页数: 5/19页
文件大小: 324K
代理商: LX1675ILQ-TR
LX1675
PRODUCTION DATA SHEET
Microsemi
Integrated Products Division
11861 Western Avenue, Garden Grove, CA. 92841, 714-898-8121, Fax: 714-893-2570
Page 13
Copyright
2004
Rev. 1.2a, 2006-02-16
WWW
.Microse
m
i
.CO
M
Multiple Output LoadSHARE PWM
TM
TH EORY OF O PERATION (CONTINUED)
The circuit in Figure 9 sums a current through a 1M
Ω resistor
(Rb) offsetting the phase 2 error amplifier to create an imbalance
in the L1 and L2 currents. Although there are many ways to
calculate component values the approach taken here is to pick Ra,
Rb, Rin, Vout, and inductor ESR. A value for the remaining
resistor Rf can then be calculated.
The first decision to be made is the current sharing ratio.
Follow the previous examples to understand the basics of
LoadSHARE. The most common reason to imbalance the
currents in the two phases is because of limitations on the
available power from the input rails for each phase.
Use the
available input power and total required output power to
determine the inductor currents for each phase.
All references are to Figure 9
1) Calculate the voltages V1 and V2.
Vout
ESR
1
L
Current
1
L
1
V
+
×
=
Vout
ESR
2
L
Current
2
L
2
V
+
×
=
2) Select values for Ra and Rb (Ra is typically 62K
Ω ; Rb
is typically 1M
Ω)
3) Calculate the offset voltage Vos at the output of the
offset amplifier
()
Rb
Ra
1
V
2
V
2
V
Vos
+
×
=
4) Calculate the value for Rf
(select a value for Rin typically 5K
Ω)
=
1
V
Vout
Vos
Rin
Rf
Due to the high impedances in this circuit layout can affect the
actual current ratio by allowing some of the switching waveforms
to couple into the current summing path. It may be necessary to
make some adjustment in Rf after the final layout is evaluated.
Also the equation for Rf requires very accurate numbers for the
voltages to insure an accurate result.
BI-PHASE, LOADSHARE (SERIES RESISTOR METHOD)
A fourth but less desirable way to produce the ratio current
between the two phases is to add a resistor in series with one of the
inductors. This will reduce the current in the inductor that has the
resistor and increase the current in the inductor of the opposite
phase.
The example of Figure 7 can be used to determine the
current ratio by adding the value of the series resistor to the ESR
value of the inductor. The added resistance will lower the overall
efficiency
LoadSHARE ERROR SOURCES
With the high DC feedback gain of this second loop, all phase
timing errors, RDS(On) mismatch, and voltage differences across the
half bridge drivers are removed from the current sharing accuracy.
The errors in the current sharing accuracy are derived from the
tolerance on the inductor’s ESR and the input offset voltage
specification of the error amplifier. The equivalent circuit is shown
next for an absolute worst case difference of phase currents
between the two inductors.
VOUT
+
-
ESR L2
ESR L1
Phase 2
Phase 1
Offset
Error
5mV
V1
V2
Figure 10 – Error Amplitude
Nominal ESR of 6m. ESR ±5%
Max offset Error = 6mV
+5% ESR L1 = 6.3 m
-5% ESR L2 = 5.7 m
1
ESRL
V
-
1
V
A
12
current
1
phase
If
OUT
=
mV
75.6
10
6.3
12
V
1
V
3
OUT
=
×
=
mV
.6
1
8
mV
6
1
V
2
V
=
+
=
A
32
14.
10
x
5.7
10
x
.6
1
8
2
L
ESR
V
-
2
V
current
2
Phase
3
OUT
=
Phase 2 current is 2.32A greater than Phase 1.
Input bias current also contributes to imbalance.
AA
PP
LL
IICC
AA
TT
IIOO
NN
SS
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