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PAM2306NC2YPBB 参数 Datasheet PDF下载

PAM2306NC2YPBB图片预览
型号: PAM2306NC2YPBB
PDF下载: 下载PDF文件 查看货源
内容描述: 双路高效率PWM降压型DC- DC Coverter [Dual High-Efficiency PWM Step-Down DC-DC Coverter]
分类和应用:
文件页数/大小: 15 页 / 402 K
品牌: PAM [ POWER ANALOG MICOELECTRONICS ]
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PAM2306  
Dual High-Efficiency PWM Step-Down DC-DC Coverter  
Application Information  
The basic PAM2306 application circuit is shown  
in Page 1. External component selection is  
determined by the load requirement, selecting L  
first and then Cin and Cout.  
The selection of Cout is driven by the required  
effective series resistance (ESR).  
Typically, 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:  
Inductor Selection  
For most applications, the value of the inductor  
will fall in the range of 1μH to 4.7μH. Its value is  
chosen based on the desired ripple current.  
Large value inductors lower ripple current and  
small value inductors result in higher ripple  
currents. Higher VIN or Vout also increases the  
ripple current as shown in equation 1. A  
reasonable starting point for setting ripple  
current is IL = 400mA (40% of 1A).  
1
æ
ö
VVOUT @VI  
L
ESR+  
ç
è
÷
ø
8fCOUT  
Where f = operating frequency, COUT=output  
capacitance and ΔIL = ripple current in the  
inductor. For a fixed output voltage, the output  
ripple is highest at maximum input voltage since  
ΔIL increases with input voltage.  
1
V
OUT  
æ
ö
(1)  
DIL =  
V
OUT 1-  
ç
Using Ceramic Input and Output Capacitors  
÷
ø
f
L
V
IN  
( )( )  
è
Higher values, lower cost ceramic capacitors are  
now becoming available in smaller case sizes.  
Their high ripple current, high voltage rating and  
low ESR make them ideal for switching regulator  
applications. Using ceramic capacitors can  
achieve very low output ripple and small circuit  
size.  
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 1.4A rated inductor should be enough for  
most applications (1A + 400mA). For better  
efficiency, choose a low DC-resistance inductor.  
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.  
Vo  
L
1.2V  
1.5V  
1.8V  
2.5V  
3.3V  
2.2μH  
2.2μH  
2.2μH  
4.7μH  
4.7μH  
CIN and COUT Selection  
Thermal consideration  
In continuous mode, the source current of the top  
MOSFET is a square wave of duty cycle  
Vout/Vin. To prevent large voltage transients, a  
low ESR input capacitor sized for the maximum  
RMS current must be used. The maximum RMS  
capacitor current is given by:  
Thermal protection limits power dissipation in  
the PAM2306. When the junction temperature  
exceeds 150°C, the OTP (Over Temperature  
Protection) starts the thermal shutdown and  
turns the pass transistor off. The pass transistor  
r e s u m e s o p e r a t i o n a f t e r t h e j u n c t i o n  
temperature drops below 120°C.  
éVOUT  
V
(
IN - VOUT ù1  
2
)
û
ë
CIN required IRMS @ IOMAX  
V
IN  
For continuous operation, the junction  
temperature should be maintained below 125°C.  
The power dissipation is defined as:  
This formula has a maximum at VIN =2Vout,  
where IR M S =IO U T /2. This simple worst-case  
condition is commonly used for design because  
even significant deviations do not offer much  
relief. Note that the capacitor manufacturer's  
ripple current ratings are often based on 2000  
hours of life. This makes it advisable to further  
derate the capacitor, or choose a capacitor rated  
at a higher temperature than required. Consult  
the manufacturer if there is any question.  
VORDSONH + V -V  
(
R
)
DSONL  
IN  
O
2
P =IO  
+ tSWF I +IQ V  
S O IN  
(
)
D
V
IN  
IQ is the step-down converter quiescent current.  
The term tsw is used to estimate the full load  
step-down converter switching losses.  
Power Analog Microelectronics,Inc  
www.poweranalog.com  
07/2008 Rev 1.0  
11