参数资料
型号: LT3434EFE
厂商: Linear Technology
文件页数: 10/24页
文件大小: 0K
描述: IC REG BUCK ADJ 3A 16TSSOP
标准包装: 95
类型: 降压(降压)
输出类型: 可调式
输出数: 1
输出电压: 1.25 V ~ 54 V
输入电压: 3.3 V ~ 60 V
PWM 型: 电流模式,混合
频率 - 开关: 200kHz
电流 - 输出: 3A
同步整流器:
工作温度: -40°C ~ 125°C
安装类型: 表面贴装
封装/外壳: 16-TSSOP(0.173",4.40mm)裸露焊盘
包装: 管件
供应商设备封装: 16-TSSOP-EP
LT3434
APPLICATIO S I FOR ATIO
and Soft-Start Current graphs in Typical Performance
Characteristics).
Frequency foldback is done to control power dissipation in
both the IC and in the external diode and inductor during
short-circuit conditions. A shorted output requires the
switching regulator to operate at very low duty cycles. As
a result the average current through the diode and induc-
tor is equal to the short-circuit current limit of the switch
INPUT CAPACITOR
Step-down regulators draw current from the input supply
in pulses. The rise and fall times of these pulses are very
fast. The input capacitor is required to reduce the voltage
ripple this causes at the input of LT3434 and force the
switching current into a tight local loop, thereby minimiz-
ing EMI. The RMS ripple current can be calculated from:
(typically 4.7A for the LT3434). Minimum switch on time
limitations would prevent the switcher from attaining a
I RIPPLE ( RMS ) =
I OUT
V IN
V OUT ( V IN – V OUT )
sufficiently low duty cycle if switching frequency were
maintained at 200kHz, so frequency is reduced by about
4:1 when the FB pin voltage drops below 0.4V (see
Frequency Foldback graph). In addition, if the current in
the switch exceeds 1.5 times the current limitations speci-
fied by the V C pin, due to minimum switch on time, the
LT3434 will skip the next switch cycle. As the feedback
voltage rises, the switching frequency increases to 200kHz
with 0.95V on the FB pin. During frequency foldback,
external syncronization is disabled to prevent interference
with foldback operation. Frequency foldback does not
affect operation during normal load conditions.
In addition to lowering switching frequency the soft-start
ramp rate is also affected by the feedback voltage. Large
capacitive loads or high input voltages can cause a high
input current surge during start-up. The soft-start func-
tion reduces input current surge by regulating switch
current via the V C pin to maintain a constant voltage ramp
rate(dV/dt)attheoutput.Acapacitor(C1inFigure2)from
the C SS pin to the output determines the maximum output
dV/dt. When the feedback voltage is below 0.4V, the V C pin
will rise, resulting in an increase in switch current and
output voltage. If the dV/dt of the output causes the current
through the C SS capacitor to exceed I CSS the V C voltage is
reduced resulting in a constant dV/dt at the output. As the
feedback voltage increases I CSS increases, resulting in an
increased dV/dt until the soft-start function is defeated
with 0.9V present at the FB pin. The soft-start function
does not affect operation during normal load conditions.
However, if a momentary short (brown out condition) is
present at the output which causes the FB voltage to drop
below 0.9V, the soft-start circuitry will become active.
Ceramiccapacitorsareidealforinputbypassing.At200kHz
switching frequency input capacitor values in the range of
4.7 μ F to 20 μ F are suitable for most applications. If opera-
tion is required close to the minimum input required by the
LT3434 a larger value may be required. This is to prevent
excessive ripple causing dips below the minimum operat-
ing voltage resulting in erratic operation.
Input voltage transients caused by input voltage steps or
by hot plugging the LT3434 to a pre-powered source such
as a wall adapter can exceed maximum V IN ratings. The
sudden application of input voltage will cause a large
surge of current in the input leads that will store energy in
the parasitic inductance of the leads. This energy will
cause the input voltage to swing above the DC level of input
power source and it may exceed the maximum voltage
rating of the input capacitor and LT3434. All input voltage
transient sequences should be observed at the V IN pin of
the LT3434 to ensure that absolute maximum voltage
ratings are not violated.
The easiest way to suppress input voltage transients is to
add a small aluminum electrolytic capacitor in parallel with
the low ESR input capacitor. The selected capacitor needs
to have the right amount of ESR to critically damp the
resonant circuit formed by the input lead inductance and
the input capacitor. The typical values of ESR will fall in the
range of 0.5 ? to 2 ? and capacitance will fall in the range
of 5 μ F to 50 μ F.
If tantalum capacitors are used, values in the 22 μ F to
470 μ F range are generally needed to minimize ESR and
meet ripple current and surge ratings. Care should be
3434fb
10
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