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ADP2450ASTZ-5-R7 数据表(PDF) 30 Page - Analog Devices

部件名 ADP2450ASTZ-5-R7
功能描述  Power Management IC for Circuit Breaker Applications
PDF  40 Pages
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制造商  AD [Analog Devices]
网页  http://www.analog.com
标志 AD - Analog Devices

ADP2450ASTZ-5-R7 数据表(HTML) 30 Page - Analog Devices

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ADP2450
Data Sheet
Rev. B | Page 30 of 40
DESIGN EXAMPLE
This section describes the procedures for selecting the external
components, based on a typical MCCB design example. The
system specifications are listed in Table 14. See Figure 72 for the
schematic for this design example.
Table 14. MCCB System Requirements
Parameter
Specification
Boost Shunt Controller Output Voltage
VOUT1 = 12 V
System Enable Threshold Voltage
VSYS_RISING = 9 V
System Disable Threshold Voltage
VSYS_FALLING = 7 V
Minimum System Consumption Current
ISYS_MIN = 15 mA
Buck Regulator Output Voltage
VOUT2 = 3.3 V
Buck Regulator Output Voltage Ripple
VOUT2_RIPPLE = 10 mV
Buck Regulator Output Current
IOUT2 = 100 mA
Single CT Secondary Current Under IN
(Rated Current)
IN_SEC = 75 mA
Actuator Resistance
RACT = 4 Ω
Analog Trip Current at CT Secondary Side
ITRP_SEC = 11 × IN_SEC
BOOST SHUNT OUTPUT VOLTAGE SETTING
Choose a 11.3 kΩ resistor as the bottom feedback resistor
(RBOT1), and calculate the top feedback resistor using the
following equation:
11
11
1.2
OUT
BOT
TOP
BOT
VR
RR

To set the output voltage of boost shunt controller to 12 V,
the resistor values are as follows: RTOP1 = 102 kΩ, and RBOT1 =
11.3 kΩ.
BOOST SHUNT OUTPUT CAPACITOR SETTING
The output capacitor of the boost shunt controller provides
energy to the actuator. The value of the capacitor depends on
the actuator specification and requirement. The capacitor value
also affects the total system start-up time. A small value
capacitor has fast system start-up time but may not provide
enough energy for the actuator when the trip occurs. A large
value capacitor has sufficient energy for the actuator but
extends the system start-up time.
A capacitor value from 100 μF to 220 μF satisfies most of the
actuator requirements in the MCCB application.
BOOST SHUNT MOSFET SETTING
The VDSS of the MOSFET must be twice as large as VOUT1 to
provide enough margin. Choose a MOSFET with VDSS > 24 V.
In a worst case scenario where the analog trip occurs on all
three phases, the current flowing through the MOSFET is 3 ×
ITRP_SEC = 2.475 A. Choose a MOSFET with ID > 3 A.
The VGS voltage of the MOSFET must be higher than 8 V.
It is recommended to select the FDMC86340 from ON
Semiconductor as the boost shunt MOSFET.
BOOST SHUNT DIODE SETTING
The VRRM of the diode must be twice as large as VOUT1 to provide
enough margin. Choose a Schottky diode with VRRM > 24 V.
The peak current rating of the diode must be higher than 3 ×
ITRP_SEC = 2.475 A to cover the worst case scenario. Choose a
Schottky diode with IO ≥ 3 A.
It is recommended to select the MBRAF360T3G from ON
Semiconductor as the boost shunt diode.
BUCK REGULATOR OUTPUT VOLTAGE SETTING
According to the system requirement, the output voltage of the
buck regulator is 3.3 V. Select the ADP2450ACPZ-1-R7 model
for a fixed 3.3 V output voltage of the buck regulator.
INDUCTOR SETTING
The peak-to-peak inductor ripple current, ΔIL, is set to 30% of
the rated output current of the buck regulator. Use the following
equation to estimate the inductor value:
22
IN
OUT
LSW
VV
D
L
If

where:
VIN2 = VOUT1 = 12 V.
VOUT2 = 3.3 V.
D = 0.275.
ΔIL = 0.15 A.
fSW = 1.2 MHz.
This calculation results in L = 13.3 μH. Choose the standard
inductor value of 15 μH.
The inductor peak current is calculated by using the following
equation:
22
2
1
15 μH
2
IN
OUT
PEAK
OUT
SW
VV
D
II
f


This calculation results in IPEAK = 166 mA.
Based on the calculated current value, select an inductor with a
minimum rms current rating of 200 mA. A shield inductor is
preferred for improved system EMI performance.
It is recommended to select the LPS3015-153 from Coilcraft as
the inductor of the buck regulator.



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