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User Manual
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2021-08-25
XDPP1100 technical reference manual
Digital power controller
Current sense (IS)
Table 10
HBCD PWM state programming example
FET PWM
output
Register programming
Register value
Q1
PWM1
Set bit field values corresponding PWM1 to 1 and other bit fields
to 0 in
ceX_on_mask0
ceX_on_mask0
=
001h
Q2
PWM2
Set bit field values corresponding PWM2 to 1 and other bit fields
to 0 in
ceX_on_mask1
ceX_on_mask1
=
002h
SR1 PWM3
Set bit field values corresponding PWM3 to 1 and other bit fields
to 0 in
ceX_off_mask0
ceX_off_mask0
=
004h
SR2 PWM4
Set bit field values corresponding PWM4 to 1 and other bit fields
to 0 in
ceX_off_mask1
ceX_off_mask1
=
008h
e)
FBFB topology
The last example is the FBFB rectifier, and its simplified topology is shown in
. The FETs Q1 and Q3
define the inductor on-time for the first half-switching cycle and Q2 and Q4 define the second switching cycle
on-time. The synchronous rectification switches SR2 and SR4 define the inductor off-time for the first half-
switching cycle and correspondingly SR1 and SR3 define the second half.
programming for this topology.
Figure 26
FBFB topology FET naming
Table 11
FBFB topology PWM state programming example
FET PWM
output
Register programming
Register value
Q1
PWM1
Set bit field values corresponding PWM1 and PWM3 to 1 and other
bit fields to 0 in
ceX_on_mask0
ceX_on_mask0
=
005h
Q2
PWM2
Set bit field values corresponding PWM2 and PWM4 to 1 and other
bit fields to 0 in
ceX_on_mask1
ceX_on_mask1
=
00Ah
Q3
PWM3
Set bit field values corresponding PWM1 and PWM3 to 1 and other
bit fields to 0 in
ceX_on_mask0
ceX_on_mask0
=
005h
Q4
PWM4
Set bit field values corresponding PWM2 and PWM4 to 1 and other
bit fields to 0 in
ceX_on_mask1
ceX_on_mask1
=
00Ah
SR1 PWM9
Set bit field values corresponding PWM9 and PWM11 to 1 and other
bit fields to 0 in
ceX_off_mask1
ceX_off_mask1
=
500h
SR2 PWM10
Set bit field values corresponding PWM10 and PWM12 to 1 and
other bit fields to 0 in
ceX_off_mask0
ceX_off_mask0
=
A00h
V
IN
Q
1
Q
4
r
w1
N:1
Q
2
Q
3
SR
4
SR
3
L
OUT
R
LOAD
+
V
OUT
-
r
w2
C
OUT
SR
1
SR
2