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LTC1430CS 参数 Datasheet PDF下载

LTC1430CS图片预览
型号: LTC1430CS
PDF下载: 下载PDF文件 查看货源
内容描述: 高功率降压型开关稳压器控制器 [High Power Step-Down Switching Regulator Controller]
分类和应用: 稳压器开关式稳压器或控制器电源电路开关式控制器光电二极管
文件页数/大小: 16 页 / 214 K
品牌: Linear [ Linear ]
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LTC1430  
U
W U U  
APPLICATIO S I FOR ATIO  
value equal to IOUT/2. A low ESR input capacitor with an  
adequate ripple current rating must be used to ensure  
reliable operation. Note that capacitor manufacturers’  
ripple current ratings are often based on only 2000 hours  
(3 months) lifetime; further derating of the input capacitor  
ripple current beyond the manufacturer’s specification is  
recommended to extend the useful life of the circuit.  
inductor value, the input and output voltage and the  
operating frequency. If the efficiency is high and can be  
approximately equal to 1, the ripple current is approxi-  
mately equal to:  
V V  
(
)
IN  
OUT  
I =  
DC  
f
OSC L  
The output capacitor in a buck converter sees much less  
ripplecurrentundersteady-stateconditionsthantheinput  
capacitor. Peak-to-peak current is equal to that in the  
inductor,usuallyafractionofthetotalloadcurrent.Output  
capacitor duty places a premium not on power dissipation  
but on ESR. During an output load transient, the output  
capacitor must supply all of the additional load current  
demanded by the load until the LTC1430 can adjust the  
inductor current to the new value. ESR in the output  
capacitorresultsinastepintheoutputvoltageequaltothe  
ESR value multiplied by the change in load current. A 5A  
load step with a 0.05ESR output capacitor will result in  
a250mVoutputvoltageshift;thisisa7.6%outputvoltage  
shift for a 3.3V supply! Because of the strong relationship  
between output capacitor ESR and output load transient  
response, the output capacitor is usually chosen for ESR,  
not for capacitance value; a capacitor with suitable ESR  
will usually have a larger capacitance value than is needed  
to control steady-state output ripple.  
VOUT  
V
IN  
DC =  
fOSC = LTC1430 oscillator frequency  
L = inductor value  
Solving this equation with our typical 5V to 3.3V applica-  
tion, we get:  
1.7 0.66  
= 2.8APP  
200kHz 2µH  
Peak inductor current at 10A load:  
2.8A  
2
10A +  
= 11.4A  
Theinductorcoremustbeadequatetowithstandthispeak  
current without saturating, and the copper resistance in  
the winding should be kept as low as possible to minimize  
resistive power loss. Note that the current may rise above  
this maximum level in circuits under current limit or under  
fault conditions in unlimited circuits; the inductor should  
be sized to withstand this additional current.  
Electrolytic capacitors rated for use in switching power  
supplies with specified ripple current ratings and ESR can  
be used effectively in LTC1430 applications. OS-CON  
electrolytic capacitors from Sanyo give excellent perfor-  
mance and have a very high performance/size ratio for an  
electrolytic capacitor. Surface mount applications can use  
either electrolytic or dry tantalum capacitors. Tantalum  
capacitors must be surge tested and specified for use in  
switching power supplies; low cost, generic tantalums are  
known to have very short lives followed by explosive  
deaths in switching power supply applications. AVX TPS  
seriessurfacemountdevicesarepopulartantalumcapaci-  
tors that work well in LTC1430 applications. A common  
way to lower ESR and raise ripple current capability is to  
parallel several capacitors. A typical LTC1430 application  
might require an input capacitor with a 5A ripple current  
capacity and 2% output shift with a 10A output load step,  
which requires a 0.007output capacitor ESR. Sanyo  
Input and Output Capacitors  
A typical LTC1430 design puts significant demands on  
boththeinputandoutputcapacitors.Undernormalsteady  
load operation, a buck converter like the LTC1430 draws  
square waves of current from the input supply at the  
switching frequency, with the peak value equal to the  
output current and the minimum value near zero. Most of  
this current must come from the input bypass capacitor,  
since few raw supplies can provide the current slew rate to  
feed such a load directly. The resulting RMS current flow  
in the input capacitor will heat it up, causing premature  
capacitorfailureinextremecases. MaximumRMScurrent  
occurs with 50% PWM duty cycle, giving an RMS current  
9
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