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SMH4803DJLP 参数 Datasheet PDF下载

SMH4803DJLP图片预览
型号: SMH4803DJLP
PDF下载: 下载PDF文件 查看货源
内容描述: 分布式电源热插拔控制器 [Distributed Power Hot-Swap Controller]
分类和应用: 控制器
文件页数/大小: 22 页 / 177 K
品牌: SUMMIT [ SUMMIT MICROELECTRONICS, INC. ]
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SMH4803  
after another delay PGD. The delays built into the R1 is calculated from:  
SMH4803allowcorrectsequencingofpowertotheloads,  
e.g. +3V supply must come up before +5V supply. The  
Vov  
delay times are factory programmed. PG2# and PG3#  
can be disabled using the ENPGA and ENPGB inputs.  
When these inputs are low they override the enable  
function produced when the SMH4803 sees a power  
good condition.  
R1 =  
ID max  
VOV is the over-voltage trip point, i.e. 2.5V, therefore:  
2.5V  
R1 =  
=10k  
250 µA  
The PG1#, PG2#, and PG3# outputs have a 12V with-  
stand capability so high voltages must not be connected  
to these pins. Inexpensive bipolar transistors will boost  
the withstand voltage to that of the host supply, see figure  
5 for connections.  
2) The minimum current that flows through the resistive  
divider, IDmin, is easily calculated from the ratio of  
maximum and minimum supply voltages:  
ID max x VS min  
ID min =  
Output Slew-Rate Control  
VS max  
The SMH4803 provides a current limited Vgate turn-on.  
A fast turn-off is performed by internally shorting Vgate to  
Vss. Changing the passive components around the  
power MOSFET switch will modify the turn-on slew-rate.  
Therefore:  
250 µA x 36V  
ID min =  
= 125 µA  
72V  
Operating at High Voltages  
3) The value of R3 is now calculated using IDmin.  
Thebreakdownvoltageoftheexternalactiveandpassive  
components limits the maximum operating voltage of the  
SMH4803 hot-swap controller. Components that must be  
able to withstand the full supply voltage are: the input and  
output decoupling capacitors, the protection diode in  
series with DrainSense pin, the power MOSFET switch  
and capacitor connected between its drain and gate, the  
high-voltage transistors connected to the power good  
outputs, and the dropper resistor connected to the  
controllers Vdd pin.  
(VS min Vuv)  
R3 =  
ID min  
Where Vuv is the under-voltage trip point, also 2.5V,  
therefore:  
(36V 2.5V)  
R3 =  
= 268kΩ  
125 µA  
Over-Voltage and Under-Voltage Resistors  
Inthefollowingexamples, thethreeresistors, R1, R2, and  
R3, connected to the OV and UV inputs must be capable  
of withstanding the maximum supply voltage which can  
be several hundred volts. The trip voltage of the UV and  
OV inputs is +2.5V relative to Vss. As the input resis-  
tances of UV and OV are very high, high value resistors  
can be used in the resistive divider. The divider resistors  
should be high stability, 1% metal-film resistors to keep  
the under-voltage and over-voltage trip points accurate.  
The closest standard 1% resistor value is 267kΩ  
4) R2 may be calculated using:  
Vuv  
(R1 + R2) =  
ID min  
Vuv  
Telecom Design Example  
R2 =  
Or  
R1  
ID min  
A hot-swap telecom application uses a 48V power supply  
with a 25% to +50% tolerance, i.e. the 48V supply can  
varyfrom36Vto72V.TheformulaeforcalculatingR1,R2,  
and R3 are shown below.  
2.5V  
R2 =  
10k= (20k10k) = 10kΩ  
125µA  
1) First select the peak current, IDmax, allowed through  
the resistive divider, say 250µA. The value of current  
is arbitrary; however, if the current is too high, self-  
heating in R3 may become a problem (especially in  
high voltage systems), and if the current is too low the  
valueofR3becomesverylargeandmaybeexpensive  
at 1% tolerance.  
SUMMIT MICROELECTRONICS  
2041 8.4 6/15/00  
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