LTC1871EMS-7 Linear Technology, LTC1871EMS-7 Datasheet - Page 25

IC MULTI CONFIG SYNC ADJ 10MSOP

LTC1871EMS-7

Manufacturer Part Number
LTC1871EMS-7
Description
IC MULTI CONFIG SYNC ADJ 10MSOP
Manufacturer
Linear Technology
Type
Step-Up (Boost), Flyback, Sepicr
Datasheet

Specifications of LTC1871EMS-7

Internal Switch(s)
No
Synchronous Rectifier
No
Number Of Outputs
1
Voltage - Output
1.23 ~ 36 V
Current - Output
50mA
Frequency - Switching
50kHz ~ 1MHz
Voltage - Input
6 ~ 36 V
Operating Temperature
-40°C ~ 85°C
Mounting Type
Surface Mount
Package / Case
10-MSOP, Micro10™, 10-uMAX, 10-uSOP
Lead Free Status / RoHS Status
Contains lead / RoHS non-compliant
Power - Output
-

Available stocks

Company
Part Number
Manufacturer
Quantity
Price
Part Number:
LTC1871EMS-7
Manufacturer:
LT
Quantity:
10 000
APPLICATIONS INFORMATION
The maximum output voltage for a SEPIC converter is:
The maximum duty cycle of the LTC1871-7 is typically
92%.
SEPIC Converter: The Peak and Average
Input Currents
The control circuit in the LTC1871-7 is measuring the input
current (using a sense resistor in the MOSFET source),
so the output current needs to be refl ected back to the
input in order to dimension the power MOSFET properly.
Based on the fact that, ideally, the output power is equal
to the input power, the maximum input current for a SEPIC
converter is:
The maximum duty cycle, D
minimum V
The constant ‘ χ ’ represents the fraction of ripple current in
the inductor relative to its maximum value. For example, if
30% ripple current is chosen, then χ = 0.30 and the peak
current is 15% greater than the average.
It is worth noting here that SEPIC converters that operate
at high duty cycles (i.e., that develop a high output volt-
age from a low input voltage) can have very high input
currents, relative to the output current. Be sure to check
that the maximum load current will not overload the input
supply.
SEPIC Converter: Inductor Selection
For most SEPIC applications the equal inductor values
will fall in the range of 10μH to 100μH. Higher values will
reduce the input ripple voltage and reduce the core loss.
Lower inductor values are chosen to reduce physical size
and improve transient response.
The peak input current is:
I
I
V
IN(MAX)
IN(PEAK)
O(MAX)
=I
= V
= 1+
IN
(
O(MAX)
.
IN
+ V
2
D
1– D
•I
)
D
O(MAX)
1– D
MAX
D
MAX
MAX
MAX
MAX
, should be calculated at
1– D
– V
D
MAX
D
MAX
1– D
1
MAX
Like the boost converter, the input current of the SEPIC
converter is calculated at full load current and minimum
input voltage. The peak inductor current can be signifi cantly
higher than the output current, especially with smaller in-
ductors and lighter loads. The following formulas assume
CCM operation and calculate the maximum peak inductor
currents at minimum V
The ripple current in the inductor is typically 20% to 40%
(i.e., a range of ‘ χ ’ from 0.20 to 0.40) of the maximum
average input current occurring at V
ΔI
the output current results in the following equations for
calculating the inductor value:
By making L1 = L2 and winding them on the same core,
the value of inductance in the equation above is replace
by 2L due to mutual inductance. Doing this maintains the
same ripple current and energy storage in the inductors. For
example, a Coiltronix CTX10-4 is a 10μH inductor with two
windings. With the windings in parallel, 10μH inductance is
obtained with a current rating of 4A (the number of turns
hasn’t changed, but the wire diameter has doubled). Split-
ting the two windings creates two 10μH inductors with a
current rating of 2A each. Therefore, substituting 2L yields
the following equation for coupled inductors:
Specify the maximum inductor current to safely handle
I
where
L(PK)
L1
I
I
L1= L2 =
L =
L1(PEAK)
L2(PEAK)
= ΔI
I
L
specifi ed in the equation above. The saturation current
V
= •I
IN(MIN)
L2
I
L
. Expressing this ripple current as a function of
= 1+
• f
= 1+
2 • I
O(MAX)
V
IN(MIN)
• D
L
MAX
2
2
• f
1– D
•I
•I
• D
D
IN
O(MAX)
O(MAX)
MAX
:
MAX
MAX
V
V
V
IN(MIN)
O
IN(MIN)
IN(MIN)
LTC1871-7
V
+ V
IN(MIN)
D
and I
+ V
D
O(MAX)
25
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and

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