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EUP3408-3.3OIR1 参数 Datasheet PDF下载

EUP3408-3.3OIR1图片预览
型号: EUP3408-3.3OIR1
PDF下载: 下载PDF文件 查看货源
内容描述: [Switching Regulator/Controller]
分类和应用:
文件页数/大小: 11 页 / 710 K
品牌: EUTECH [ EUTECH MICROELECTRONICS INC ]
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EUP3408  
Application Information  
Main Control Loop  
V
V
O
O
The EUP3408 uses a slope-compensated constant  
frequency, current mode architecture. Both the main  
(P-Channel MOSFET) and synchronous (N-channel  
MOSFET) switches are internal. During normal  
operation, the EUP3408 regulates output voltage by  
switching at a constant frequency and then modulating  
the power transferred to the load each cycle using PWM  
comparator. The duty cycle is controlled by three  
weighted differential signals: the output of error  
amplifier, the main switch sense voltage and the  
slope-compensation ramp. It modulates output power by  
adjusting the inductor-peak current during the first half  
of each cycle. An N-channel, synchronous switch turns  
on during the second half of each cycle (off time). When  
the inductor current starts to reverse or when the PWM  
reaches the end of the oscillator period, the synchronous  
switch turns off. This keeps excess current from flowing  
backward through the inductor, from the output  
capacitor to GND, or through the main and synchronous  
switch to GND.  
I
= I  
×
× 1 −  
RMS  
O
V
V
IN  
IN   
The output capacitor COUT has a strong effect on loop  
stability.  
The selection of COUT is driven by the required effective  
series resistance (ESR).  
ESR is a direct function of the volume of the capacitor;  
that is, physically larger capacitors have lower ESR.  
Once the ESR requirement for COUT has been met, the  
RMS current rating generally far exceeds the IRIPPLE(P-P)  
requirement. The output ripple VOUT is determined by:  
1
V  
OUT  
I ESR +  
L
8fC  
OUT   
When choosing the input and output ceramic capacitors,  
choose the X5R or X7R dielectric formulations. These  
dielectrics have the best temperature and voltage  
characteristics of all the ceramics for a given value and  
size.  
Inductor Selection  
The output inductor is selected to limit the ripple current  
to some predetermined value, typically 20%~40% of the  
full load current at the maximum input voltage. Large  
value inductors lower ripple currents. Higher VIN or  
VOUT also increases the ripple current as shown in  
equation. A reasonable starting point for setting ripple  
current is IL=320mA (40% of 800mA).  
Output Voltage Programming  
The output voltage is set by a resistive divider according  
to the following formula:  
V
R2  
R1  
1
OUT  
V
= 0.6V 1 +  
I  
=
V
1 −  
OUT  
L
OUT  
(f)(L)  
V
IN   
For adjustable voltage package, the external resistive  
divider is connected to the output, allowing remote  
voltage sensing as shown in below figure.  
The DC current rating of the inductor should be at least  
equal to the maximum load current plus half the ripple  
current to prevent core saturation. Thus, a 960mA rated  
inductor should be enough for most applications  
(800mA+160mA). For better efficiency, choose a low  
DC-resistance inductor.  
CIN and COUT Selection  
In continuous mode, the source current of the top  
MOSFET is a square wave of duty cycle VOUT/VIN. The  
primary function of the input capacitor is to provide a  
low impedance loop for the edges of pulsed current  
drawn by the EUP3408. A low ESR input capacitor sized  
for the maximum RMS current must be used. The size  
required will vary depending on the load, output voltage  
and input voltage source impedance characteristics. A  
typical value is around 4.7µF.  
The input capacitor RMS current varies with the input  
voltage and the output voltage. The equation for the  
maximum RMS current in the input capacitor is:  
DS3408 Ver1.2 Nov. 2007  
8