LTC3729EG Linear Technology, LTC3729EG Datasheet - Page 14

IC SW REG SYNC STEP-DOWN 28-SSOP

LTC3729EG

Manufacturer Part Number
LTC3729EG
Description
IC SW REG SYNC STEP-DOWN 28-SSOP
Manufacturer
Linear Technology
Series
PolyPhase®r
Type
Step-Down (Buck)r
Datasheet

Specifications of LTC3729EG

Internal Switch(s)
No
Synchronous Rectifier
Yes
Number Of Outputs
1
Voltage - Output
0.8 ~ 5 V
Current - Output
5A
Frequency - Switching
1.1MHz
Voltage - Input
4 ~ 36 V
Operating Temperature
-40°C ~ 85°C
Mounting Type
Surface Mount
Package / Case
28-SSOP
Lead Free Status / RoHS Status
Contains lead / RoHS non-compliant
Power - Output
-

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Part Number:
LTC3729EG
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APPLICATIONS INFORMATION
LTC3729
where d is the temperature dependency of R
constant inversely related to the gate drive current and N
is the number of stages.
Both MOSFETs have I
equation includes an additional term for transition losses,
which peak at the highest input voltage. For V
the high current efficiency generally improves with larger
MOSFETs, while for V
increase to the point that the use of a higher R
with lower C
synchronous MOSFET losses are greatest at high input
voltage when the top switch duty factor is low or during
a short‑circuit when the synchronous switch is on close
to 100% of the period.
The term (1 + d) is generally given for a MOSFET in the
form of a normalized R
but d = 0.005/°C can be used as an approximation for
low voltage MOSFETs. C
MOSFET characteristics. The constant k = 1.7 can be used
to estimate the contributions of the two terms in the main
switch dissipation equation.
The Schottky diodes, D1 and D2 shown in Figure 1 conduct
during the dead‑time between the conduction of the two large
power MOSFETs. This helps prevent the body diode of the
bottom MOSFET from turning on, storing charge during the
dead‑time, and requiring a reverse recovery period which
would reduce efficiency. A 1A to 3A (depending on output
current) Schottky diode is generally a good compromise for
both regions of operation due to the relatively small average
current. Larger diodes result in additional transition losses
due to their larger junction capacitance.
14
P
P
SYNC
MAIN
=
=
k V
( )
V
V
V
OUT
IN
RSS
IN
IN
– V
V
2
IN
 
actual provides higher efficiency. The
 
I
OUT
MAX
I
N
MAX
2
IN
N
R losses but the topside N‑channel
 
> 20V the transition losses rapidly
 
I
 
MAX
2
DS(ON)
RSS
N
(
(
C
1+ d
RSS
 
is usually specified in the
2
)
(
vs. Temperature curve,
)
R
1+ d
( )
DS(ON)
f
)
R
DS(ON)
+
DS(ON)
DS(ON)
IN
device
, k is a
< 20V
C
In continuous mode, the source current of each top
N‑channel MOSFET is a square wave of duty cycle
V
RMS current must be used. The details of a close form
equation can be found in Application Note 77. Figure 4
shows the input capacitor ripple current for different phase
configurations with the output voltage fixed and input volt‑
age varied. The input ripple current is normalized against
the DC output current. The graph can be used in place of
tedious calculations. The minimum input ripple current
can be achieved when the product of phase number and
output voltage, N(V
input voltage V
So the phase number can be chosen to minimize the input
capacitor size for the given input and output voltages.
In the graph of Figure 4, the local maximum input RMS
capacitor currents are reached when:
These worst‑case conditions are commonly used for
design because even significant deviations do not offer
much relief. Note that capacitor manufacturer’s ripple
current ratings are often based on only 2000 hours of life.
OUT
IN
V
V
and C
V
V
OUT
OUT
/V
IN
IN
Figure 4. Normalized Input RMS Ripple Current vs
Duty Factor for 1 to 6 Output Stages
IN
. A low ESR input capacitor sized for the maximum
=
=
OUT
N
2k − 1
k
2N
0.6
0.5
0.4
0.3
0.2
0.1
Selection
0
IN
0.1
where k = 1, 2, …, N – 1
or:
0.2
where k = 1, 2, …, N
OUT
0.3
DUTY FACTOR (V
), is approximately equal to the
0.4
1-PHASE
2-PHASE
3-PHASE
4-PHASE
6-PHASE
0.5
OUT
0.6
/V
IN
0.7
)
0.8
3729
F04
0.9
3729fb

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