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FP6863 датащи(PDF) 8 Page - Fitipower Integrated Technology Inc.

номер детали FP6863
подробное описание детали  Slew Rate Limited Load Switch
PDF  10 Pages
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производитель  FITIPOWER [Fitipower Integrated Technology Inc.]
домашняя страница  http://www.fitipower.com/en_US/index.asp
Logo FITIPOWER - Fitipower Integrated Technology Inc.

FP6863 датащи(HTML) 8 Page - Fitipower Integrated Technology Inc.

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FP6863-1.2-FEB-2012
FP6863
85T
fitipower integrated technology lnc.
Application Information
Input Capacitor
A 1
μF or above low-ESR ceramic capacitor for input
capacitor is recommended for general application.
Input capacitor is not necessary for operation, but it is
useful to prevent from affecting upstream circuits such
as noisy supply voltage or output short.
Output short
circuit may cause ringing on the input terminal (from
source lead inductance) to destroy the internal control
circuitry.
The input transient must not exceed 6V of
the absolute maximum supply voltage even for a short
duration.
Output Capacitor
A 0.1
μF or above capacitor between V
OUT and GND is
recommended.
Standard bypass methods should be
used to minimize inductance and resistance between
the bypass capacitor and the downstream connector to
reduce EMI and decouple voltage drop caused when
downstream transients.
Power Dissipation
The device’s junction temperature depends on
several factors such as the load, PCB layout,
ambient temperature and package type.
The
output pin of FP6863 can deliver current up to
1.5A, respectively over the full operating junction
temperature range.
However, the maximum
output current must be decreased at higher
ambient temperature to ensure the junction
temperature does not exceed 125°C.
With all
possible conditions, the junction temperature
must
be
within
the
range
specified
under
operating conditions.
Power dissipation can be
calculated based on the output current and the
RDS-ON of switch as below:
=R S O
OUT2
Although the devices are rated for 1.5A of output
current, but the application may limit the amount
of output current based on the total power
dissipation and the ambient temperature.
The
final operating junction temperature for any set of
conditions can be estimated by the following
thermal equation:
MA )=
T MA ) TA
θ A
Where TJ(MAX) is the maximum operation junction
temperature, TA is the ambient temperature and
the
θ
JA
is the junction to ambient thermal
resistance.



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