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MCP1406-E/AT датащи(PDF) 11 Page - Microchip Technology

номер детали MCP1406-E/AT
подробное описание детали  6A High-Speed Power MOSFET Drivers
PDF  22 Pages
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производитель  MICROCHIP [Microchip Technology]
домашняя страница  http://www.microchip.com
Logo MICROCHIP - Microchip Technology

MCP1406-E/AT датащи(HTML) 11 Page - Microchip Technology

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© 2006 Microchip Technology Inc.
DS22019A-page 11
MCP1406/07
The MCP1406/07 devices have two pins each for VDD,
OUTPUT, and GND. Both pins must be used for proper
operation. This also lowers path inductance which will,
along with proper decoupling, help minimize ringing in
the circuit.
Placing a ground plane beneath the MCP1406/07 will
help as a radiated noise shield as well as providing
some heat sinking for power dissipated within the
device.
4.5
Power Dissipation
The total internal power dissipation in a MOSFET driver
is the summation of three separate power dissipation
elements.
4.5.1
CAPACITIVE LOAD DISSIPATION
The power dissipation caused by a capacitive load is a
direct function of frequency, total capacitive load, and
supply voltage. The power lost in the MOSFET driver
for a complete charging and discharging cycle of a
MOSFET is:
4.5.2
QUIESCENT POWER DISSIPATION
The power dissipation associated with the quiescent
current draw depends upon the state of the input pin.
The MCP1406/07 devices have a quiescent current
draw when the input is high of 0.13 mA (typ) and
0.035 mA (typ) when the input is low. The quiescent
power dissipation is:
4.5.3
OPERATING POWER DISSIPATION
The operating power dissipation occurs each time the
MOSFET driver output transitions because for a very
short period of time both MOSFETs in the output stage
are on simultaneously. This cross-conduction current
leads to a power dissipation describes as:
PT
PL PQ PCC
++
=
Where:
PT = Total power dissipation
PL = Load power dissipation
PQ = Quiescent power dissipation
PCC = Operating power dissipation
PL
fCT
×
VDD
2
×
=
Where:
f = Switching frequency
CT = Total load capacitance
VDD = MOSFET driver supply voltage
PQ
IQH DIQL
1 D
–
()
×
+
×
() V
DD
×
=
Where:
IQH = Quiescent current in the high state
D = Duty cycle
IQL = Quiescent current in the low state
VDD = MOSFET driver supply voltage
PCC
CC f
×
VDD
×
=
Where:
CC = Cross-conduction constant (A*sec)
f = Switching frequency
VDD = MOSFET driver supply voltage



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