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AME5130AEEVADJZ 参数 Datasheet PDF下载

AME5130AEEVADJZ图片预览
型号: AME5130AEEVADJZ
PDF下载: 下载PDF文件 查看货源
内容描述: 微功率升压型DC / DC转换器 [Micropower Step-Up DC/DC Converter]
分类和应用: 转换器稳压器开关式稳压器或控制器电源电路开关式控制器
文件页数/大小: 16 页 / 511 K
品牌: AME [ ANALOG MICROELECTRONICS ]
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AME, Inc.  
Micropower Step-Up DC/DC Converter  
AME5130  
nElectrical Specifications  
nApplication Information  
The AME5130 features a constant off-time control  
scheme. Operation can be best understood by referring  
to Figure 3. When the voltage at the FB pin is less than  
0.9V, the Enable Comp in Figure 3 enables the device  
and the NMOS switch is turmed on pulling the SW pin to  
ground. When the NMOS switch is on, current is sup-  
plied by the output capacitor C OUT. Once the current in  
the inductor reaches the peak current limit, the 400ns  
One Shot turns off the NMOS switch. The SW voltage  
will then rise to the output voltage plus a diode drop and  
the inductor current will begin to decrease as shown in  
Figure 3. During this time the energy stored in the induc-  
INDUCTOR SELECTION  
The appropriate inductor for a given application is  
calculated using the following equation:  
æ VOUT - VIN(min) + VD ö  
ç
ç
÷
TOFF  
L =  
÷
ICL  
è
ø
Where VD is the schottky diode voltage, I  
is the  
CL  
switch current limit found in the Typical Performance Char-  
acteristics section, and T OFF is the switch off time. When  
using this equation be sure to use in minimum input volt-  
age for the application, such as for battery powered ap-  
plications.  
tor is transferred to C  
and the load. After the 400ns  
OUT  
off-time the NMOS switch is turned on and energy is  
stored in the inductor again. This energy transfer from  
the inductor to the output causes a stepping effect in  
the output ripple.  
Choosing inductors with low ESR decrease power  
lossed and increase efficiency.  
This cycle is continued until the voltage at FB reaches  
1.23V. When FB reaches this voltage, the enable com-  
parator then disables the device turning off the NMOS  
switch and reducing the Iq of the device to 64 mA. The  
Care should be taken when choosing an inductor. For  
applications that require an input voltage that approaches  
the output voltage, such as when converting a Li-ion bat-  
tery voltage to 5V, the 400ns off time may not be enough  
time to discharge the energy in the inductor and transfer  
the energy to the output capacitor and load. This can  
cause a ramping effect in the inductor current waveform  
and an increased ripple on the output voltage. Using a  
load current is then supplied solely by C  
indicated  
OUT  
by the gradually decreasing slope at the output. When  
the FB pin drops slightly below 1.23V, the enable com-  
parator enables the device and begins the cycle de-  
scribed previously. The RUN pin can be used to turn off  
the AME5130 and reduce the Iq to 0.01mA. In shutdown  
mode the output voltage will be a diode drop lower than  
the input voltage.  
smaller inductor will cause the I  
to increase and will  
PK  
increase the output voltage ripple further. This can be  
solved by adding a 4.7pF capacitor across the R1 feed-  
back resistor (Figure 3) and slightly increasing the out-  
put capacitor. A smaller inductor can then be used to  
ensure proper discharge in the 400ns off time.  
DIODE SELECTION  
To maintain high efficiency, the average current rating  
of the schottky diode should be larger than the peak in-  
ductor current, I PK. Schottky diodes with a low forward  
drop and fast switching speeds are ideal for increasing  
efficiency in portable applications. Choose a reverse break-  
down of the schottky diode larger than the output volt-  
age.  
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