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ADP3198 датащи(PDF) 24 Page - Analog Devices

номер детали ADP3198
подробное описание детали  8-Bit Programmable 2- to 4-Phase Synchronous Buck Controller
PDF  32 Pages
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производитель  AD [Analog Devices]
домашняя страница  http://www.analog.com
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ADP3198 датащи(HTML) 24 Page - Analog Devices

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ADP3198
Rev. A | Page 24 of 32
OUTPUT OFFSET
The Intel specification requires that at no load the nominal output
voltage of the regulator be offset to a value lower than the
nominal voltage corresponding to the VID code. The offset is
set by a constant current source flowing out of the FB pin (IFB) and
flowing through RB. The value of R
B
B
B
can be found using
Equation 19.
FB
ONL
VID
B
I
V
V
R
−
=
Ω
k
00
.
1
μA
15
V
285
.
1
V
3
.
1
=
−
=
B
R
(19)
The closest standard 1% resistor value is 1.00 kΩ.
COUT SELECTION
The required output decoupling for the regulator is typically
recommended by Intel for various processors and platforms.
Use some simple design guidelines to determine the require-
ments. These guidelines are based on having both bulk
capacitors and ceramic capacitors in the system.
First, select the total amount of ceramic capacitance. This is
based on the number and type of capacitor to be used. The best
location for ceramic capacitors is inside the socket with 12 to
18, 1206 size being the physical limit. Other capacitors can be
placed along the outer edge of the socket as well.
To determine the minimum amount of ceramic capacitance
required, start with a worst-case load step occurring right after
a switching cycle has stopped. The ceramic capacitance then
delivers the charge to the load while the load is ramping up and
until the VR has responded with the next switching cycle.
Equation 20 gives the designer a rough approximation for
determining the minimum ceramic capacitance. Due to the
complexity of the PCB parasitics and bulk capacitors, the actual
amount of ceramic capacitance required can vary.
()
⎥
⎦
⎤
⎢
⎣
⎡
−
⎟
⎠
⎞
⎜
⎝
⎛ −
×
×
≥
R
O
SW
O
MIN
Z
S
I
D
n
f
R
C
2
Δ
1
1
1
(20)
The typical ceramic capacitors consist of multiple 10 μF or
22 μF capacitors. For this example, Equation 20 yields 180.8 μF,
so eighteen, 10 μF ceramic capacitors suffice.
Next, there is an upper limit imposed on the total amount of
bulk capacitance (CX) when the user considers the VID on-the-
fly voltage stepping of the output (voltage step VV in time tV
with error of VERR).
A lower limit is based on meeting the capacitance for load
release for a given maximum load step (ΔIO) and a maximum
allowable overshoot. The total amount of load release voltage
is given as ΔVO = ΔIO × RO + ΔVrl, where ΔVrl is the maximum
allowable overshoot voltage.
()
⎟
⎟
⎟
⎟
⎟
⎠
⎞
⎜
⎜
⎜
⎜
⎜
⎝
⎛
−
×
⎟⎟
⎠
⎞
⎜⎜
⎝
⎛
Δ
Δ
+
×
×
≥
Z
VID
O
rl
O
O
MIN
X
C
V
I
V
R
n
I
L
C
Δ
(21)
() ≤
MAX
X
C
(22)
Z
O
V
VID
V
VID
V
2
O
2
C
L
nKR
V
V
t
V
V
R
nK
L
−
⎟
⎟
⎟
⎠
⎞
⎜
⎜
⎜
⎝
⎛
−
⎟⎟
⎠
⎞
⎜⎜
⎝
⎛
×
+
×
×
1
1
2
where
⎟⎟
⎠
⎞
⎜⎜
⎝
⎛
−
=
V
ERR
V
V
n
K
1
.
To meet the conditions of these equations and transient
response, the ESR of the bulk capacitor bank (RX) should be less
than two times the droop resistance (RO). If the CX(MIN) is larger
than CX(MAX), the system cannot meet the VID on-the-fly speci-
fication and can require the use of a smaller inductor or more
phases (and may have to increase the switching frequency to
keep the output ripple the same).
This example uses 18, 10 μF 1206 MLC capacitors (CZ = 180 μF).
The VID on-the-fly step change is 450 mV in 230 μs with a
settling error of 2.5 mV. The maximum allowable load release
overshoot for this example is 50 mV, therefore, solving for the
bulk capacitance yields
()
mF
92
.
3
μF
180
V
3
.
1
A
100
mV
50
mΩ
0
.
1
4
A
100
nH
320
=
⎟⎟
⎟
⎟
⎟
⎟
⎠
⎞
⎜⎜
⎜
⎜
⎜
⎜
⎝
⎛
−
×
⎟
⎟
⎠
⎞
⎜
⎜
⎝
⎛
+
×
×
≤
MIN
X
C
()
()
×
×
×
×
×
≤
V
3
.
1
Ω
m
0
.
1
2
.
5
4
mV
450
nH
320
2
2
MAX
X
C
mF
43.0
μF
180
1
nH
320
mV
450
Ω
m
0
1
2
5
4
V
3
1
μs
230
1
2
=
−
⎟
⎟
⎟
⎠
⎞
⎜
⎜
⎜
⎝
⎛
−
⎟
⎟
⎠
⎞
⎜
⎜
⎝
⎛
×
×
×
×
×
+
.
.
.
where K = 5.2.



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