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CD43-100 데이터시트(PDF) 5 Page - Linear Technology

부품명 CD43-100
상세설명  Dual Micropower DC/DC Converter with Positive and Negative Outputs
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제조업체  LINER [Linear Technology]
홈페이지  http://www.linear.com
Logo LINER - Linear Technology

CD43-100 데이터시트(HTML) 5 Page - Linear Technology

  CD43-100 Datasheet HTML 1Page - Linear Technology CD43-100 Datasheet HTML 2Page - Linear Technology CD43-100 Datasheet HTML 3Page - Linear Technology CD43-100 Datasheet HTML 4Page - Linear Technology CD43-100 Datasheet HTML 5Page - Linear Technology CD43-100 Datasheet HTML 6Page - Linear Technology CD43-100 Datasheet HTML 7Page - Linear Technology CD43-100 Datasheet HTML 8Page - Linear Technology  
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5
LT1945
1945f
Choosing an Inductor
Several recommended inductors that work well with the
LT1945 are listed in Table 1, although there are many other
manufacturers and devices that can be used. Consult each
manufacturer for more detailed information and for their
entire selection of related parts. Many different sizes and
shapes are available. Use the equations and recommenda-
tions in the next few sections to find the correct inductance
value for your design.
Table 1. Recommended Inductors
PART
VALUE (
µH)
MAX DCR (
)
VENDOR
LQH3C4R7
4.7
0.26
Murata
LQH3C100
10
0.30
(714) 852-2001
LQH3C220
22
0.92
www.murata.com
CD43-4R7
4.7
0.11
Sumida
CD43-100
10
0.18
(847) 956-0666
CDRH4D18-4R7
4.7
0.16
www.sumida.com
CDRH4D18-100
10
0.20
DO1608-472
4.7
0.09
Coilcraft
DO1608-103
10
0.16
(847) 639-6400
DO1608-223
22
0.37
www.coilcraft.com
Inductor Selection—Boost Regulator
The formula below calculates the appropriate inductor
value to be used for a boost regulator using the LT1945 (or
at least provides a good starting point). This value pro-
vides a good tradeoff in inductor size and system perfor-
mance. Pick a standard inductor close to this value. A
larger value can be used to slightly increase the available
output current, but limit it to around twice the value
calculated below, as too large of an inductance will in-
crease the output voltage ripple without providing much
additional output current. A smaller value can be used
(especially for systems with output voltages greater than
12V) to give a smaller physical size. Inductance can be
calculated as:
L
VV
V
I
t
OUT
IN MIN
D
LIM
OFF
=
−+
()
where VD = 0.4V (Schottky diode voltage), ILIM = 350mA
and tOFF = 400ns; for designs with varying VIN such as
battery powered applications, use the minimum VIN value
APPLICATIO S I FOR ATIO
in the above equation. For most regulators with output
voltages below 7V, a 4.7
µH inductor is the best choice,
even though the equation above might specify a smaller
value. This is due to the inductor current overshoot that
occurs when very small inductor values are used (see
Current Limit Overshoot section).
For higher output voltages, the formula above will give
large inductance values. For a 2V to 20V converter (typical
LCD Bias application), a 21
µH inductor is called for with
the above equation, but a 10
µH inductor could be used
without excessive reduction in maximum output current.
Inductor Selection—SEPIC Regulator
The formula below calculates the approximate inductor
value to be used for a SEPIC regulator using the LT1945.
As for the boost inductor selection, a larger or smaller
value can be used.
L
VV
I
t
OUT
D
LIM
OFF
=
+


2
Inductor Selection—Inverting Regulator
The formula below calculates the appropriate inductor
value to be used for an inverting regulator using the
LT1945 (or at least provides a good starting point). This
value provides a good tradeoff in inductor size and system
performance. Pick a standard inductor close to this value
(both inductors should be the same value). A larger value
can be used to slightly increase the available output
current, but limit it to around twice the value calculated
below, as too large of an inductance will increase the
output voltage ripple without providing much additional
output current. A smaller value can be used (especially for
systems with output voltages greater than 12V) to give a
smaller physical size. Inductance can be calculated as:
L
VV
I
t
OUT
D
LIM
OFF
=
+
2
where VD = 0.4V (Schottky diode voltage), ILIM = 350mA
and tOFF = 400ns.


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