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US3004 参数 Datasheet PDF下载

US3004图片预览
型号: US3004
PDF下载: 下载PDF文件 查看货源
内容描述: 提供双LDO控制器的5位可编程同步降压控制器IC [5 BIT PROGRAMMABLE SYNCHRONOUS BUCK CONTROLLER IC WITH DUAL LDO CONTROLLER]
分类和应用: 控制器
文件页数/大小: 14 页 / 101 K
品牌: UNISEM [ UNISEM ]
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US3004,US3005  
Following the same procedure for the Schottcky diode  
results in a heatsink with qsa = 25 °C/W. Although it is  
possible to select a slightly smaller heatsink, for sim-  
plicity the same heatsink as the one for the high side  
MOSFET is also selected for the synchronous MOSFET.  
Note that since the MOSFETs Rds-on increases with  
temperature, this number must be divided by » 1.5,  
inorder to find the Rds-on max at room temperature. The  
Motorola MTP3055VL has a maximum of 0.18W Rds-on  
at room temperature, which meets our requirement.  
To select the heatsink for the LDO Mosfet the first step  
is to calculate the maximum power dissipation of the  
device and then follow the same procedure as for the  
switcher.  
Pd = ( Vin - Vo ) * IL  
Where :  
Pd = Power Dissipation of the Linear Regulator  
IL = Linear Regulator Load Current  
For the 1.5V and 2A load:  
Pd = (3.3 - 1.5)*2=3.6 W  
Assuming Tj-max=125°C  
Ts = Tj - Pd * (qjc + qcs)  
Ts = 125 - 3.6 * (1.8 + 0.05) = 118 °C  
With the maximum heat sink temperature calculated in  
the previous step, the Heat Sink to Air thermal resis-  
tance (qsa) is calculated as follows :  
Switcher Current Limit Protection  
The PWM controller uses the MOSFET Rds-on as the  
sensing resistor to sense the MOSFET current and com-  
pares to a programmed voltage which is set externally  
via a resistor (Rcs) placed between the drain of the  
MOSFET and the “CS+” terminal of the IC as shown in  
the application circuit. For example, if the desired cur-  
rent limit point is set to be 22A and from our previous  
selection,themaximumMOSFETRds-on=19mW, then  
the current sense resistor, Rcs is calculated as :  
Vcs=IcL*Rds=22*0.019=0.418V  
Rcs=Vcs/Ib=(0.418V)/(200uA)=2.1kW  
Where: Ib=200uA is the internal current setting of the  
device  
Assuming Ta=35 °C  
DT = Ts - Ta = 118 - 35 = 83 °C Temperature Rise  
Above Ambient  
Switcher Timing Capacitor Selection  
The switching frequency can be programmed using an  
external timing capacitor. The value of Ct can be ap-  
proximated using the equation below:  
qsa = DT/Pd  
qsa = 83 / 3.6 = 23 °C/W  
The same heat sink as the one selected for the switcher  
MOSFETs is also suitable for the 1.5V regulator. It is  
also possible to use TO263 package or even the  
MTD3055VL in D pak if the load current is less than  
1.5A. For the 2.5V regulator since the dropout voltage is  
only 0.8V and the load current is less than 0.5A, for  
most applications the same MOSFET without heat sink  
or for low cost applications, one can use PN2222A in  
TO92 or SOT23 package.  
3.5´ 10- 5  
FSW  
»
C
T
Where :  
CT  
=Ti min g Capacitor  
SW  
F
=
Switching Frequency  
LDO Regulator Component Selection  
If, FSW=200 kHz :  
3.5´ 10- 5  
Since the internal voltage reference for the linear regula-  
tors is set at 1.5V for all devices, there is no need to  
divide the output voltage for the 1.5V, GTL+ regulator.  
For the 2.5V, Clock supply the resistor dividers are se-  
lected per following:  
CT  
»
= 175pF  
200 ´ 103  
LDO Power MOSFET Selection  
Vo=(1+Rt/Rb)*Vref  
Where:  
Rt=Top resistor divider  
Rb=Bottom resistor divider  
Vref=1.5V typical  
Assuming Rt=100W, for Vo=2.5V  
Rb=Rt/[(Vo/Vref) - 1]  
The first step in selectiong the power MOSFET for the  
linear regulators is to select its maximum Rds-on based  
on the input to output Dropout voltage and the maximum  
load current.  
Rds(max)=(Vin - Vo)/IL  
For Vo=1.5V, and Vin=3.3V , IL=2A  
Rds-max=(3.3 - 1.5)/2= 0.9W  
Rb=100/[(2.5/1.5) - 1]=150W  
Rev. 1.2  
12/8/00  
4-12