參數(shù)資料
型號(hào): LTC1702C
廠商: Linear Technology Corporation
元件分類: 通用總線功能
英文描述: Synchronous 8-Bit Up/Down Binary Counters 24-SOIC 0 to 70
中文描述: 雙550kHz的同步二相開(kāi)關(guān)穩(wěn)壓器控制器
文件頁(yè)數(shù): 18/36頁(yè)
文件大小: 350K
代理商: LTC1702C
18
LTC1702
APPLICATIO
S I
N
FOR
ATIO
U
must be low enough to keep the initial drop as QT turns on
within reason (100mV or so); its RMS current capability
must be adequate to withstand the 4.6A
RMS
ripple current
at the input and the capacitance must be large enough to
maintain the input voltage until the input supply can make
up the difference. Generally, a capacitor that meets the
first two parameters will have far more capacitance than is
required to keep capacitance-based droop under control.
In our example, we need 0.01
ESR to keep the input drop
under 100mV with a 10A current step and 4.6A
RMS
ripple
current capacity to avoid overheating the capacitor. These
requirements can be met with multiple low ESR tantalum
or electrolytic capacitors in parallel, or with a large mono-
lithic ceramic capacitor.
The two sides of the LTC1702 run off a single master clock
and are wired 180
°
out of phase with each other to
significantly reduce the total capacitance/ESR needed at
the input. Assuming 100mV of ripple and 10A output
current, we needed an ESR of 0.01
and 4.7A ripple
current capability for one side. Now, assume both sides
are running simultaneously with identical loading. If the
two sides switched in phase, all the loading conditions
would double and we’d need enough capacitance for
9.4A
RMS
and 0.005
ESR. With the two sides out of
phase, the input current is 4.8A
RMS
—barely larger than
the single case (Figure 7)! The peak current deltas are still
W
U
Calculating RMS Current in C
IN
A buck regulator like the LTC1702 draws pulses of
current from the input capacitor during normal opera-
tion. The input capacitor sees this as AC current, and
dissipates power proportional to the RMS value of the
input current waveform. To properly specify the capaci-
tor, we need to know the RMS value of the input current.
Calculating the approximate RMS value of a pulse train
with a fixed duty cycle is straightforward, but the LTC1702
complicates matters by running two sides simultaneously
and out of phase, creating a complex waveform at the
input.
To calculate the approximate RMS value of the input
current, we first need to calculate the average DC value
with both sides of the LTC1702 operating at maximum
load. Over a single period, the system will spend some
time with one top switch on and the other off, perhaps
some time with both switches on, and perhaps some
time with both switches off. During the time each top
switch is on, the current will equal that side’s full load
output current. When both switches are on, the total
current will be the sum of the two full load currents, and
when both are off, the current is effectively zero. Multiply
each current value by the percentage of the period that
the current condition lasts, and sum the results—this is
the average DC current value.
As an example, consider a circuit that takes a 5V input
and generates 3.3V at 3A at side 1 and 1.6V at 10A at
side 2. When a cycle starts, TG1 turns on and 3A flows
TIME
0
A
B
C
D
50%
16% 16% 18%
I
AVE
0
I
5.2
3
10
13
1702 SB1
Figure SB1. Average Current Calculation
Figure 7. RMS Input Current
0
10A
32%
68%
0
10A
32% 18%
18%
18%
32%
–3.2A
0
6.8A
32%
68%
Q1 CURRENT, SIDE 1 ONLY
(FOR 1-PHASE, 2 SIDES:
MULTIPLY CURRENT BY 2)
CURRENT IN C
IN
, SIDE 1 ONLY
I
= 4.66A
RMS
, (1-PHASE,
2 SIDES: I
CIN
RMS
)
CURRENT IN C
,
BOTH SIDES EQUAL LOAD
I
CIN
= 4.8A
RMS
Q11 CURRENT
Q21 CURRENT
BOTH SIDES EQUAL LOAD
2-PHASE OPERATION
–6.4A
0
3.6A
32%
18%
1702 F07
32%
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