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3412IFE 参数 Datasheet PDF下载

3412IFE图片预览
型号: 3412IFE
PDF下载: 下载PDF文件 查看货源
内容描述: 2.5A ,为4MHz ,单片同步降压型稳压器 [2.5A, 4MHz, Monolithic Synchronous Step-Down Regulator]
分类和应用: 稳压器
文件页数/大小: 20 页 / 213 K
品牌: Linear [ Linear ]
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LTC3412  
U
OPERATIO  
internally by adding a compensating ramp to the inductor  
current signal at duty cycles in excess of 40%. Normally,  
the maximum inductor peak current is reduced when  
slope compensation is added. In the LTC3412, however,  
slope compensation recovery is implemented to keep the  
maximum inductor peak current constant throughout the  
range of duty cycles. This keeps the maximum output  
current relatively constant regardless of duty cycle.  
Short-Circuit Protection  
Whentheoutputisshortedtoground,theinductorcurrent  
decays very slowly during a single switching cycle. To  
prevent current runaway from occurring, a secondary  
current limit is imposed on the inductor current. If the  
inductor valley current increases larger than 4.8A, the top  
powerMOSFETwillbeheldoffandswitchingcycleswillbe  
skipped until the inductor current falls to a safe level.  
U
W U U  
APPLICATIO S I FOR ATIO  
The basic LTC3412 application circuit is shown in Fig-  
ure 1. External component selection is determined by the  
maximumloadcurrentandbeginswiththeselectionofthe  
inductor value and operating frequency followed by CIN  
Inductor Selection  
For a given input and output voltage, the inductor value  
and operating frequency determine the ripple current. The  
ripple current ΔIL increases with higher VIN and decreases  
with higher inductance.  
and COUT  
.
Operating Frequency  
V
VOUT  
V
IN  
OUT  
fL  
ΔIL =  
1−  
Selection of the operating frequency is a tradeoff between  
efficiency and component size. High frequency operation  
allows the use of smaller inductor and capacitor values.  
Operation at lower frequencies improves efficiency by  
reducing internal gate charge and switching losses but  
requires larger inductance values and/or capacitance to  
maintain low output ripple voltage.  
Having a lower ripple current reduces the ESR losses in  
the output capacitors and the output voltage ripple. High-  
est efficiency operation is achieved at low frequency with  
small ripple current. This, however, requires a large  
inductor.  
A reasonable starting point for selecting the ripple current  
is ΔIL = 0.4(IMAX). The largest ripple current occurs at the  
highest VIN. To guarantee that the ripple current stays  
below a specified maximum, the inductor value should be  
chosen according to the following equation:  
The operating frequency of the LTC3412 is determined by  
an external resistor that is connected between the RT pin  
andground.Thevalueoftheresistorsetstherampcurrent  
that is used to charge and discharge an internal timing  
capacitor within the oscillator and can be calculated by  
using the following equation:  
VOUT  
fΔI  
VOUT  
L =  
1−  
3.23 •1011  
V
L(MAX)  
IN(MAX)  
ROSC  
=
(Ω)10kΩ  
f(Hz)  
The inductor value will also have an effect on Burst Mode  
operation.Thetransitionfromlowcurrentoperationbegins  
whenthepeakinductorcurrentfallsbelowalevelsetbythe  
burst clamp. Lower inductor values result in higher ripple  
current which causes this to occur at lower load currents.  
This causes a dip in efficiency in the upper range of low  
current operation. In Burst Mode operation, lower induc-  
tance values will cause the burst frequency to increase.  
Although frequencies as high as 4MHz are possible, the  
minimum on-time of the LTC3412 imposes a minimum  
limit on the operating duty cycle. The minimum on-time is  
typically 110ns. Therefore, the minimum duty cycle is  
equal to 100 • 110ns • f(Hz).  
3412fb  
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