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ADP1031ACPZ-1-R7 数据表(PDF) 29 Page - Analog Devices

部件名 ADP1031ACPZ-1-R7
功能描述  Three-Channel, Isolated Micropower Management Unit with Seven Digital Isolators
PDF  38 Pages
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制造商  AD [Analog Devices]
网页  http://www.analog.com
标志 AD - Analog Devices

ADP1031ACPZ-1-R7 数据表(HTML) 29 Page - Analog Devices

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Data Sheet
ADP1031
Rev. A | Page 29 of 38
APPLICATIONS INFORMATION
COMPONENT SELECTION
Feedback Resistors
The ADP1031 provides an adjustable output voltage for both
flyback and inverting regulators. An external resistor divider
sets the output voltage where the divider output must equal the
appropriate feedback reference voltage, VFB1 or VFB3. To limit the
output voltage accuracy degradation due to the feedback bias
current, ensure that the current through the divider is at least
10 times IFB1 or IFB3. The recommended RFB1 and RFB3 values are
in the range of 50 kΩ to 250 kΩ to minimize the output voltage
error due to the bias current and to lessen the power dissipation
across the feedback resistors. The external feedback resistors are
not required for the fixed output versions because the feedback
resistors are already inside the chip.
VOUT1
6V TO 28V
Tx1
VINP
FB1
VOUT1
VINP
SWP
CFLYBK
SGND2
D1
RFT1
RFB1
FLYBACK
1:1
4.7µF
Figure 70. Flyback Regulator Output Voltage Setting
Set the positive output for the flyback regulator by
VOUT1 = VFB1 × (1 + (RFT1/RFB1))
where:
VOUT1 is the flyback output voltage.
VFB1 is the flyback feedback voltage.
RFT1 is the feedback resistor from VOUT1 to FB1.
RFB1 is the feedback resistor from FB1 to SGND2.
Conversely, calculate the value of the top resistor for the target
VOUT1 by:
RFT1 = RFB1 × ((VOUT1/VFB1) − 1)
VOUT3
–24V TO –5V
SW3
FB3
VOUT3
CINV
L2
RFB3
RFT3
INVERTER
100µH
4.7µF
SGND2
Figure 71. Inverting Regulator Output Voltage Setting
Set the negative output for the inverting regulator by
VOUT3 = VFB3 × (1 + (RFT3/RFB3))
where:
VOUT3 is the inverting regulator output voltage (negative sign
disregarded).
VFB3 is the inverting regulator feedback voltage in reference to
VOUT3.
RFT3 is the feedback resistor from FB3 to SGND2.
RFB3 is the feedback resistor from VOUT3 to FB3.
As with the flyback regulator, calculate the value of the top
resistor for the target VOUT3 by the following equation:
RFT3 = RFB3 × ((VOUT3/VFB3) − 1)
Table 15. Recommended Feedback Resistor Values
Desired
Output
Voltage (V)
Flyback/Inverting Regulator
RFT1/RFT3
(MΩ)
RFB1/RFB3
(kΩ)
Calculated Output
Voltage (V)
±6
0.715
110
±6.000
±9
1.24
121
±8.998
±12
1.54
110
±12.000
±15
2.15
121
±15.015
±24
3.48
120
±24.000
+28
3.4
100
+28.000
Capacitor Selection
Higher output capacitor values reduce the output voltage ripple
and improve the load transient response. When choosing this
value, it is also important to account for the loss of capacitance
due to the output voltage dc bias.
Ceramic capacitors are manufactured with a variety of
dielectrics, each with a different behavior over temperature and
applied voltage. Capacitors must have a dielectric adequate to
ensure the minimum capacitance over the necessary temperature
range and dc bias conditions. X5R or X7R dielectrics with
voltage ratings of 25 V to 50 V (depending on output) are
recommended for best performance. Y5V and Z5U dielectrics
are not recommended for use with any dc-to-dc converter
because of their poor temperature and dc bias characteristics.
Calculate the worst case capacitance accounting for capacitor
variation over temperature, component tolerance, and voltage
using the following equation:
CEFFECTIVE = CNOMINAL × (1 − TEMPCO) × (1 − DCBIASCO) ×
(1 − Tolerance)
where:
CEFFECTIVE is the effective capacitance at the operating voltage.
CNOMINAL is the nominal capacitance shown in this data sheet.
TEMPCO is the worst case capacitor temperature coefficient.
DCBIASCO is the dc bias derating at the output voltage.
Tolerance is the worst case component tolerance.
To guarantee the performance of the device, it is imperative to
evaluate the effects of dc bias, temperature, and tolerances on
the behavior of the capacitors for each application.
Capacitors with lower effective series resistance (ESR) and
effective series inductance (ESL) are preferred to minimize
voltage ripple.



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