NCP1587EDR2G ON Semiconductor, NCP1587EDR2G Datasheet - Page 11

IC PWM CTLR BUCK UVLO 8-SOIC

NCP1587EDR2G

Manufacturer Part Number
NCP1587EDR2G
Description
IC PWM CTLR BUCK UVLO 8-SOIC
Manufacturer
ON Semiconductor
Type
Step-Down (Buck)r
Datasheet

Specifications of NCP1587EDR2G

Internal Switch(s)
No
Synchronous Rectifier
Yes
Number Of Outputs
1
Voltage - Output
Adj to 0.8V
Current - Output
1A
Frequency - Switching
275kHz
Voltage - Input
4.5 V ~ 13.2 V
Operating Temperature
-40°C ~ 125°C
Mounting Type
Surface Mount
Package / Case
8-SOIC (0.154", 3.90mm Width)
Lead Free Status / RoHS Status
Lead free / RoHS Compliant

Available stocks

Company
Part Number
Manufacturer
Quantity
Price
Part Number:
NCP1587EDR2G
Manufacturer:
ON Semiconductor
Quantity:
1 250
DESIGN EXAMPLE II: Type III Compensation
(Oscon Cap. with small ESR; Do not place R
Choose the loop gain crossover frequency;
The corner frequency of the output filter is calculated below;
Check the ESR zero frequency;
Choose C
gain magnitude, one zero position and the soft start. By
adjusting the value of this compensation capacitor, the
crossover frequency and the soft start time can be adjusted.
Zeros of the compensation network are calculated as follows;
Switching Frequency
Output Capacitance
Output Capacitance
Output Inductance
Input Voltage
Output Voltage
The compensation capacitor (C
1st zero;
F
F
F
LC
ESR
ESR
C1
+
for the soft start
+
+
2
2
2
F
co
p
+ 1
p
p
C
5
C1
1 mH
R
7 mW
1
1
ESR
+ 33 nF
F
1
sw
Figure 13. Closed-loop Voltage Loop-gain of the NCP1587E
+ 55 KHz
1120 mF
C
C1
560 mF
O
F
R
C
L
V
V
) is related to the loop
sw
ESR
out
out
out
in
= 12 V
= 275 KHz
= 1 mH
= 1.6 V
= 2×560 mF
+ 4.7 KHz
+ 40.6 KHz
= 7 mW/Each
C
, C
C
http://onsemi.com
, C
P
)
11
Blue curve: Gain-Frequency
Red curve: Gain-Frequency
(Phase margin = 61.417 degree, Gain margin = 9.347 dB)
stable system with transconductance amplifier. Ù choose
R
much larger than 2/gm for the stable system.
Poles of the compensation network are calculated as follows;
C1
R
2nd zero;
Choose R3 for the crossover frequency. R3 should be
Choose C20 = 3.3 nF
1st pole;
Choose R4 to cancel the output capacitor ESR zero.
C1
= 12.1 kW
should be much larger than 2/gm in order to get the
R3 + 10 kW
F
C20 +
R4 +
R
z2
C1
+
+ F
+
+
+
2
2
2
2
F
LC
2
2
P1
F
p
p
Z1
+ 4.7 KHz
+ F
p
p
p
p
+
F
40.6 kHz
1
1
ESR
F
F
4.7 KHz
P1
10
F
1
470 Hz
LC
z2
1
z1
1
1
+ 40.6 KHz
+ 470 Hz
C20
R3
C
C1
3.3 n
10 kW
30 nF
+ 1.2 kW
+ 11.3 kW
+ 3.4 nF

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