参数资料
型号: LTC3860EUH#PBF
厂商: Linear Technology
文件页数: 16/36页
文件大小: 0K
描述: IC REG CTRLR BUCK PWM VM 32-QFN
标准包装: 73
系列: PolyPhase®
PWM 型: 电压模式
输出数: 2
频率 - 最大: 1.25MHz
占空比: 91.5%
电源电压: 3 V ~ 5 V
降压:
升压:
回扫:
反相:
倍增器:
除法器:
Cuk:
隔离:
工作温度: -40°C ~ 125°C
封装/外壳: 32-WFQFN 裸露焊盘
包装: 管件
产品目录页面: 1336 (CN2011-ZH PDF)
LTC3860
APPLICATIONS INFORMATION
V OUT ( V IN – V OUT )
Δ V OUT ≤ Δ I L ? ESR +
supplycanmakeupthedifference.Generally,acapacitor
(particularly a non-ceramic type) that meets the ?rst two
parameters will have far more capacitance than is required
to keep capacitance-based droop under control.
The input capacitor’s voltage rating should be at least 1.4
times the maximum input voltage. Power loss due to ESR
occurs not only as I 2 R dissipation in the capacitor itself,
but also in overall battery ef?ciency. For mobile applica-
tions, the input capacitors should store adequate charge
to keep the peak battery current within the manufacturer’s
speci?cations.
The input capacitor RMS current requirement is simpli-
?ed by the multiphase architecture and its impact on the
worst-case RMS current drawn through the input network
(battery/fuse/capacitor). It can be shown that the worst-
case RMS current occurs when only one controller is
operating. The controller with the highest (V OUT )(I OUT )
product needs to be used to determine the maximum
RMS current requirement. Increasing the output current
drawn from the other out-of-phase controller will actually
decrease the input RMS ripple current from this maximum
value. The out-of-phase technique typically reduces the
input capacitor’s RMS ripple current by a factor of 30%
to 70% when compared to a single phase power supply
solution.
In continuous mode, the source current of the top N-channel
MOSFET is approximately a square wave of duty cycle
V OUT /V IN . The maximum RMS capacitor current is given
by:
I RMS ≈ I OUT(MAX)
V IN
Note that capacitor manufacturer’s ripple current ratings
are often based on only 2000 hours of life. This makes
it advisable to further derate the capacitor or to choose
a capacitor rated at a higher temperature than required.
Several capacitors may also be paralleled to meet size or
height requirements in the design. Always consult the
manufacturer if there is any question.
Ceramic, tantalum, OS-CON and switcher-rated electrolytic
capacitors can be used as input capacitors, but each has
drawbacks: ceramics have high voltage coef?cients of
capacitance and may have audible piezoelectric effects;
tantalums need to be surge-rated; OS-CONs suffer from
higher inductance, larger case size and limited surface
mount applicability; and electrolytics’ higher ESR and
dryout possibility require several to be used. Sanyo
OS-CON SVP, SVPD series; Sanyo POSCAP TQC series
or aluminum electrolytic capacitors from Panasonic WA
series or Cornell Dubilier SPV series, in parallel with a
couple of high performance ceramic capacitors, can be
used as an effective means of achieving low ESR and high
bulk capacitance.
C OUT Selection
The selection of C OUT is primarily determined by the ESR
required to minimize voltage ripple and load step transients.
The output ripple ΔV OUT is approximately bounded by:
? 1 ?
?
? 8 ? f SW ? C OUT ?
where ΔI L is the inductor ripple current.
ΔI L may be calculated using the equation:
? ? 1– V
IN ?
?
This formula has a maximum at V IN = 2V OUT , where
I RMS = I OUT /2. This simple worst-case condition is com-
monly used for design because even signi?cant deviations
Δ I L =
V OUT ? V OUT ?
L ? f SW
do not offer much relief. The total RMS current is lower
when both controllers are operating due to the interleav-
ing of current pulses through the input capacitors. This
is why the input capacitance requirement calculated
above for the worst-case controller is adequate for the
Since ΔIL increases with input voltage, the output ripple
voltage is highest at maximum input voltage. Typically,
once the ESR requirement is satis?ed, the capacitance is
adequate for ?ltering and has the necessary RMS current
rating.
dual controller design.
3860fc
16
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