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LT8602 датащи(PDF) 29 Page - Linear Technology

номер детали LT8602
подробное описание детали  42V, Low IQ, Quad Output Triple Monolithic Buck Converter and Boost Controller
PDF  38 Pages
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производитель  LINER [Linear Technology]
домашняя страница  http://www.linear.com
Logo LINER - Linear Technology

LT8602 датащи(HTML) 29 Page - Linear Technology

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LT8603
29
8603f
For more information www.linear.com/LT8603
APPLICATIONS INFORMATION
VRIPPLE = ∆IL • ESR, for aluminum or tantalum
where VRIPPLE is the peak-to-peak output ripple, fSW is
the switching frequency, ∆IL is the peak-to-peak ripple
current in the inductor, COUT is the output capacitor value
in µF and ESR is the output capacitor series resistance.
The low ESR and small size of ceramic capacitors make
them the preferred type for LT8603 applications. However,
not all ceramic capacitors are the same. Many of the
higher value capacitors use dielectrics with high tem-
perature and voltage coefficients. In particular Y5V and
Z5U types lose a large fraction of their capacitance with
applied voltage and at temperature extremes. Because
loop stability, transient response ripple and EMI depend
on the value of the input and output capacitors it is best
to use X5R (max 85°C) or X7R (max 125°C) capacitors
depending on the operating temperature range.
Electrolytic capacitors are also an option. The ESRs of
most aluminum electrolytic capacitors are too large to
deliver low output ripple. Tantalum, as well as newer,
lower ESR organic electrolytic capacitors intended for
power supply use are suitable. Choose a capacitor with a
low enough ESR for the required output ripple. Because
the volume of the capacitor determines its ESR, both the
size and value will be larger than a ceramic capacitor that
would give similar ripple performance. One benefit is that
larger capacitance may give better transient response for
large changes in load current.
The Typical Applications section provides a reason-
able starting point for output capacitor values. Note, for
applications that intend to operate near minimum on-
time, larger output capacitance values may be required
to minimize output voltage ripple. Careful evaluation of
each application must be made to ensure adequate design
margin.
Buck: Boost Capacitor Selection
The high voltage channels require a voltage above PVIN
to drive the gates of the top NFET switches. Connecting a
capacitor between each channel’s BST and SW pins cre-
ates this voltage with an approximate value of 3.3V. For
most applications, a 0.1μF ceramic capacitor is a good
choice.
Buck: RUN, Soft-Start, Tracking
In addition to the global EN/UVLO pin that controls the
entire chip, each channel has its own independent control
pin or pins.
The low voltage channel has a RUN pin with a fixed inter-
nal threshold of 1.2V. When the RUN pin exceeds 1.2V, a
soft start is initiated which brings the low voltage channel
into regulation in approximately 1.0ms.
Channel 1 and Channel 2 have dual purpose TRKSSx
control pins which can be used to ramp each output in a
controlled way. Each channel’s feedback pin voltage will
regulate to the lower of the corresponding TRKSS pin
and the internal 1V reference. These pins can therefore
provide output voltage tracking. In addition, there is an
internal constant current pull-up of 2.4μA at each TRKSS
pin that can be used to charge an external capacitor to
provide a programmable output soft-start function. The
soft-start ramp time can be calculated from:
tSS = CTRKSS
1V
2.4µA
The TRKSSx pin is pulled down through approximately
330Ω. It will be pulled down if temperature protection is
activated.
To achieve coincident tracking, connect a resistor divider
from the controlling output to the TRKSS pin of the slave
output. Figure 10 shows the divider required for Channel 2
to track VOUT1. With this circuit, R1 and R2 values should
be chosen to minimize the offset from the 2.4µA pull-
up current. To achieve ratiometric tracking, connect both
TRKSS1 and TRKSS2 to a single capacitor to ground.
Figure 10 shows the output waveforms for both coinci-
dent and ratiometric tracking. Note: Pulling TRKSS1 and
TRKSS2 to ground does not guarantee the respective
channel will never display a switching cycle.



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