MAX15035ETL+ Maxim Integrated Products, MAX15035ETL+ Datasheet - Page 23

IC REG STEP DOWN 15A 40-TQFN

MAX15035ETL+

Manufacturer Part Number
MAX15035ETL+
Description
IC REG STEP DOWN 15A 40-TQFN
Manufacturer
Maxim Integrated Products
Type
Step-Down (Buck)r
Datasheet

Specifications of MAX15035ETL+

Internal Switch(s)
Yes
Synchronous Rectifier
Yes
Number Of Outputs
1
Voltage - Output
1.05V, 1.5V
Current - Output
15A
Voltage - Input
4.5 ~ 26 V
Operating Temperature
-40°C ~ 85°C
Mounting Type
Surface Mount
Package / Case
40-TQFN Exposed Pad
Power - Output
2.16W
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
Frequency - Switching
-
Lead Free Status / Rohs Status
Lead free / RoHS Compliant
Ceramic capacitors have a high-ESR zero frequency,
but applications with sufficient current-sense compen-
sation may still take advantage of the small size, low
ESR, and high reliability of the ceramic chemistry. Using
the inductor DCR, applications using ceramic output
capacitors may be compensated using either a DC
compensation or AC compensation method (Figure 11).
Figure 11. Feedback Compensation for Ceramic Output Capacitors
15A Step-Down Regulator with Internal Switches
AGND
AGND
OPTION B: AC-COUPLED CURRENT-SENSE COMPENSATION
OPTION A: DC-COUPLED CURRENT-SENSE COMPENSATION
MAX15035
MAX15035
GND
GND
PGND
PGND
______________________________________________________________________________________
BST
BST
LX
LX
FB
FB
IN
IN
PWR
PWR
PWR
PWR
C
PWR
IN
R
R
SENA
SEN
C
PWR
FEEDBACK RIPPLE IN PHASE WITH INDUCTOR CURRENT
STABILITY REQUIREMENT
STABILITY REQUIREMENT
FEEDBACK RIPPLE IN PHASE WITH INDUCTOR CURRENT
IN
R
(
C
R
SEN SEN
COMP
SENA
R
R
C
C
COMP
L
SENB
C
SEN
SEN
L
L
||
R
L
SENB
C
INPUT
INPUT
OUT
)
C
SEN
2
The DC-coupling requires fewer external compensation
capacitors, but this also creates an output load line that
depends on the inductor’s DCR (parasitic resistance).
Alternatively, the current-sense information may be AC-
coupled, allowing stability to be dependent only on the
inductance value and compensation components and
eliminating the DC load line.
f
SW
1
PWR
PWR
C
C
C
OUT
OUT
OUT
AND R
2
f
SW
1
COMP COMP
AND LOAD LINE
C
OUTPUT
OUTPUT
DC COMPENSATION
<> FEWER COMPENSATION COMPONENTS
<> CREATES OUTPUT LOAD LINE
<> LESS OUTPUT CAPACITANCE REQUIRED
AC COMPENSATION
<> NOT DEPENDENT ON ACTUAL DCR VALUE
<> NO OUTPUT LOAD LINE
FOR TRANSIENT RESPONSE
f
SW
1
=
R
SENA
R
SENB DCR
+
R
R
SENB
23

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