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LTC7803 датащи(PDF) 21 Page - Analog Devices

номер детали LTC7803
подробное описание детали  40V, Low IQ, 3MHz, Triple Output Buck/Buck/Boost Controller
PDF  42 Pages
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производитель  AD [Analog Devices]
домашняя страница  http://www.analog.com
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LTC7803 датащи(HTML) 21 Page - Analog Devices

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LTC7811
21
Rev. 0
For more information www.analog.com
APPLICATIONS INFORMATION
To ensure that the application will deliver full load cur-
rent over the full operating temperature range, choose
the minimum value for VSENSE(MAX) in the Electrical
Characteristics table.
Next, determine the DCR of the inductor. When provided,
use the manufacturer’s maximum value, usually given at
20°C. Increase this value to account for the temperature
coefficient of copper resistance, which is approximately
0.4%/°C. A conservative value for TL(MAX) is 100°C. To
scale the maximum inductor DCR to the desired sense
resistor value, use the divider ratio:
RD =
RSENSE(EQUIV)
DCRMAX atTL(MAX)
C1 is usually selected to be in the range of 0.1μF to 0.47μF.
This forces R1||R2 to around 2k, reducing error that might
have been caused by the SENSE+ pin’s ≈1μA current.
The target equivalent resistance R1||R2 is calculated from
the nominal inductance, C1 value, and DCR:
R1!R2 =
L
(DCR at 20°C) • C1
The sense resistor values are:
R1=
R1!R2
RD
; R2 =
R1•RD
1−RD
The maximum power loss in R1 is related to duty cycle.
For the buck controllers, the maximum power loss occurs
in continuous mode at the maximum input voltage:
PLOSS R1=
(VIN(MAX) − VOUT)• VOUT
R1
For the boost controller, the maximum power loss occurs
in continuous mode at VIN = VOUT/2:
PLOSS R1=
(VOUT(MAX) − VIN)• VIN
R1
Ensure that R1 has a power rating higher than this value.
If high efficiency is necessary at light loads, consider this
power loss when deciding whether to use DCR sensing
or sense resistors. Light load power loss can be mod-
estly higher with a DCR network than with a sense resis-
tor, due to the extra switching losses incurred through
R1. However, DCR sensing eliminates a sense resistor,
reduces conduction losses and provides higher efficiency
at heavy loads. Peak efficiency is about the same with
either method.
Boost Channel Low-Side Current Sensing
The boost channel current sense resistor can alternatively
be connected in series with the source of the bottom
switch as shown in Figure 2c. In this configuration, the
boost channel input voltage and output voltage are both
limited only by external components. Be aware that the
regulator may exhibit a slower transient response since
the inductor current cannot be monitored when the bottom
switch is off. Additionally, the SENSE3+ and SENSE3- pins
must be differentially filtered to keep switching noise from
corrupting the current sense signal. Typically, resistors
in the range of 50Ω to 500Ω should be placed series with
the SENSE pins, and a 1nF capacitor should be placed
between SENSE3+ and SENSE3-, as close as possible to
the LTC7811. The IMON3 boost channel current monitor
feature is not compatible with low-side current sensing.



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