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SMH4803A データシートの表示(PDF) - Summit Microelectronics

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SMH4803A
Summit-Microelectronics
Summit Microelectronics Summit-Microelectronics
SMH4803A Datasheet PDF : 19 Pages
First Prev 11 12 13 14 15 16 17 18 19
SMH4803A
Preliminary
APPLICATIONS
Operating at High Voltages
The breakdown voltage of the external active and passive
components limits the maximum operating voltage of the
SMH4803A 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 the DRAIN SENSE pin, the power MOSFET
switch and the 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.
Over-Voltage and Under-Voltage Resistors
In the following examples, the three resistors, R1, R2, and
R3, connected to the OV and UV inputs, must be capable
of withstanding the maximum supply voltage of several
hundred volts. The trip voltage of the UV and OV inputs is
2.5V relative to VSS. As the input impedance of UV and OV
is very high, large 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.
Next the minimum current that flows through the resistive
divider, IDMIN, is calculated from the ratio of minimum and
maximum supply voltage levels:
IDMIN
=
IDMAX × VSMIN
VSMAX
.
Substituting:
IDMIN
=
250µA × 36V
72V
=
125µ A
.
Now the value of R3 is calculated from IDMIN:
R3
=
VSMIN VUV
IDMIN
.
VUV is the under-voltage trip point, also 2.5V. Substituting:
R3
=
36V 2.5V
125µ A
=
268k
.
Telecom Design Example
A hot-swap telecom application may use a 48V power
supply with a 25% to +50% tolerance (i.e., the 48V supply
can vary from 36V to 72V). The formulae for calculating
R1, R2, and R3 follow.
First a peak current, IDMAX, must be specified for the
resistive network. The value of the current is arbitrary, but
it can't be too high (self-heating in R3 will become a
problem), or too low (the value of R3 becomes very large,
and leakage currents can reduce the accuracy of the OV
and UV trip points). The value of IDMAX should be 200µA
for the best accuracy at the OV and UV trip points. A value
of 250µA for IDMAX will be used to illustrate the following
calculations.
With VOV (2.5V) being the over-voltage trip point, R1 is
calculated by the formula:
The closest standard 1% resistor value is 267k
Then R2 is calculated:
(R1+ R2)
=
VUV
IDMIN
,
or
R2
=
VUV
IDMIN
R1.
Substituting:
R2
=
2.5V
125µ A
10k
=
20k
10k
=
10k
.
R1 =
VOV
IDMAX
.
An Excel spread sheet is available on Summit's website
(www.summitmicro.com) to simplify the resistor value
calculations and tolerance analysis for R1, R2, and R3.
Substituting:
R1 =
2.5V
250µ A
=
10k
.
Dropper Resistor Selection
The SMH4803A is powered from the high-voltage supply
via a dropper resistor, RD. The dropper resistor must
provide the SMH4803A (and its loads) with sufficient
operating current under minimum supply voltage condi-
SUMMIT MICROELECTRONICS, Inc.
2051 4.4 3/15/01
11

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