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NB650GL Datasheet(PDF) 14 Page - MPS Industries, Inc.

Part # NB650GL
Description  High-Effeciency, Fast-Transient, 6A, 28V Synchronous Step-Down Converters with 2-Bit VID
PDF  20 Pages
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Manufacturer  MPSIND [MPS Industries, Inc.]
Direct Link  http://www.mpsind.com/index.html
Logo MPSIND - MPS Industries, Inc.

NB650GL Datasheet(HTML) 14 Page - MPS Industries, Inc.

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NB650/NB650H
– 6A, 28V, FAST-TRANSIENT, SYNCHRONOUS STEP-DOWN CONVERTERS
NB650/NB650H Rev. 1.13
www.MonolithicPower.com
14
10/7/2019
MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited.
Preliminary Specifications Subject to Change
© 2019 MPS. All Rights Reserved.
APPLICATION INFORMATION
Setting the Output Voltage-Large ESR Caps
A resistor divider from the output voltage to the
FB pin sets the output voltage. Changing the VID
codes for the NB650/NB650H accomplishes the
same thing.
When there is no external ramp, the output
voltages are set by feedback resistors R1 and
R2A, R2B and R2C. First, choose R1 within 5
kΩ-
to-10
0kΩ to ensure stable operation. VOUT1, VOUT2,
VOUT3 and VOUT4 are the voltages at different VID
codes,
arranged
from
low
to
high.
Then
determine R2A, R2B and R2C as follows:
REF
1
OUT1
OUT
REF
2
V
R2A
R1
V
V
V

 
(14)
1
OUT2
OUT2
REF
2
REF
1
R2B
V
V
V
11
V
R1 R2A
 

(15)
1
OUT3
OUT3
REF
2
REF
1
R2C
V
V
V
11
V
R1 R2A
 

(16)
VOUT4 can be calculated as:
REF
1
OUT 4
OUT 4
2
V
(R1 R2A // R2B // R2C)
VV
R2A // R2B // R2C

 
(17)
Where
OUT x
V
is the output ripple determined by
equation 30.
Setting the Output Voltage-Small ESR Caps
R1
R2
Ceramic
SW
FB
Vo
L
R9
R4
C4
Figure 10: Simplified Ceramic Capacitor Circuit
When using a low-ESR ceramic capacitor on the
output, add an external voltage ramp to FB
through resistor R4 and capacitor C4. The ramp
voltage, VRAMP, influences the output voltage
besides the resistor divider shown in Figure 10.
Equation 7 calculates VRAMP.
Choose R1 within 5
kΩ-to-100kΩ. The value of
R2 then is determined as follows:
)
V
(V
)
R9
R4
1
R1
1
(
V
R2A
FB(AVG)
OUT1
FB(AVG)
(18)
R2A
1
R9
R4
1
R1
1
V
V
V
1
R2B
FB(AVG)
FB(AVG)
OUT2
)
(
(19)
R2A
1
R9
R4
1
R1
1
V
V
V
1
R2C
FB(AVG)
FB(AVG)
OUT3
)
(
(20)
And VOUT4 also can be calculated with equation
17.
The VFB(AVG) is the average value on FB. VFB(AVG)
varies with the VIN, VO, and load condition; its
value in skip mode is lower than in PWM mode,
which means the load regulation is strictly related
to the VFB(AVG). Also the line regulation is related
to the VFB(AVG); use a lower VRAMP that meets the
conditions of equation 10 for better load or line
regulation.
For PWM operation, estimate VFB(AVG) from the
following equation:
R9
R1//R2
R1//R2
V
2
1
V
V
RAMP
REF
FB(AVG)
(21)
Usu
ally, R9 is set to 0Ω, and it can also be set
following equation 22 for better noise immunity.
Set the value to <(1/5)×R1//R2 to minimize its
influence on VRAMP.
SW
2f
C4
2
1
R9
(22)
Using equations 18 through 20 to calculate the
output voltage can be complicated. Furthermore,
as VRAMP changes due to changes in VOUT and VIN,
VFB also varies. To improve the output voltage
accuracy and simplify the R2A, R2B and R2C
calculations, add a DC-blocking capacitor (CDC)
to filter the DC influence from R4 and R9. Figure
11 shows a simplified circuit with external ramp
compensation and a DC-blocking capacitor. The
addition of this capacitor simplifies the R2A, R2B
and R2C calculations, as per equations 23-25.



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