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ADP1032ACPZ-1-R7 数据表(PDF) 32 Page - Analog Devices

部件名 ADP1032ACPZ-1-R7
功能描述  Two-Channel, Isolated Micropower Management Unit with Seven Digital Isolators
PDF  37 Pages
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制造商  AD [Analog Devices]
网页  http://www.analog.com
标志 AD - Analog Devices

ADP1032ACPZ-1-R7 数据表(HTML) 32 Page - Analog Devices

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ADP1032
Data Sheet
Rev. 0 | Page 32 of 37
Maximum Output Current Calculation
The maximum output power and current that can be achieved
from the flyback output depends on a number of variables within
the regulator. These variables include the transformer choice,
the operating frequency, and the rectifier diode choice. The
flyback regulator output is the supply to the buck regulator that
drives VOUT2. Determine the maximum output power capability by
PVOUT1 (MAX) = 0.5 × (IPEAK2 − (IPEAK − IAC/2)2) × LPRI × fSW × η
where:
PVOUT1 (MAX) is the maximum output power from VOUT1.
η is the expected efficiency of the flyback regulator.
The lower limit of the flyback current-limit threshold, ILIM(FLYBACK),
limits the maximum IPEAK. However, it is not recommended to
operate at this level to avoid unwanted current-limit events due to
variation in transformer inductance, efficiency, flyback switching
frequency, and rectifier diode forward voltage drop. If the load on
the flyback causes the current limit to trip, the output voltage may
not regulate as expected. It is recommended to choose a peak
operating current with a built-in margin for the variations
mentioned or to calculate the maximum output power or output
load using the worst case transformer inductance, efficiency,
diode forward voltage drop, and flyback switching frequency.
Calculate the maximum load current on VOUT1 by
IVOUT1 (MAX) = PVOUT1 (MAX)/VOUT1
where IVOUT1 (MAX) is the maximum output current from VOUT1.
BUCK REGULATOR COMPONENTS SELECTION
Inductor
The value of the inductor for the ADP1032 buck regulator
affects the efficiency and the output voltage ripple. Larger value
inductors typically improve efficiency. However, for a given
package size, as load increases, the dc resistance (DCR) and core
losses eventually have an increasing negative impact on efficiency.
Using a smaller value inductor reduces output voltage ripple but
can decrease the overall efficiency due to increased switching
losses.
Output Capacitor
The output capacitor selection affects the output ripple voltage,
load step transient, and the loop stability of the regulator. A 4.7 µF
capacitor is recommended as a balance between performance and
size, but a larger capacitor reduces output ripple.
Table 17. Transformer Selection
Part Number
Manufacturer
Turns
Ratio1
Primary
Saturation
Current2
(mA)
Leakage
Inductance
(µH)
Isolation
Voltage3
(V rms)
Size, Length × Width
× Height, (mm)
Inductance
(µH)
Resistance
(Ω)
ZA9644-AE
Coilcraft
1:1
470
1.8
490
3.8 maximum
2000
10.92 × 9.25 × 10
750317986R6A
Würth Elektronik
1:1
470
1.27
480
3.5 typical,
7 maximum
1500
10.8 × 13.35 × 9.76
750318257R6A
Würth Elektronik
1:1
470
1.56
550
1.0 typical,
2.0 maximum
1500
16 × 16.8 × 7.62
ZA9384-AL
Coilcraft
1:1
470
1.1
800
4.0
2000
15.3 × 16.5 × 6.7
750318377R6A
Würth Elektronik
1:1
470
1.42
470
0.8 typical,
1.6 maximum
1500
17.78 × 22.35 × 8.89
751318463R6A
Würth Elektronik
1:1
470
1.22
450
0.5 typical,
1.0 maximum
Functional
isolation
10.8 × 13.35 × 9.76
1
Turns ratio between the primary and secondary coils.
2
20% drop from initial.
3
1 minute duration. Basic insulation.
Table 18. Buck Regulator Recommended Inductors
Part Number
Manufacturer
Inductance (µH)
DC Resistance (Ω)
Saturation Current1 (mA)
Size, Length ×
Width × Height, (mm)
744043101
Würth Elektronik
100
0.55
290
4.8 × 4.8 × 2.8
XFL3012-104MEB
Coilcraft
100
2.63
280
3.2 × 3.2 × 1.3
LQH3NPN101MMEL
Murata
100
1.59
260
3 × 3 × 1.4
SRN3015-101M
Bourns
100
2.92
270
3 × 3 × 1.5
SRU2016-101Y
Bourns
100
4.9
150
2.8 × 2.8 × 1.65
XFL2006-104MEB
Coilcraft
100
11.1
115
2 × 2 × 0.6
1
30% drop in inductance.



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