Electronic Components Datasheet Search
  English  ▼

X  

LT8613 Datasheet(PDF) 20 Page - Analog Devices

Part # LT8613
Description  65V, 8A Synchronous Step-Down Silent Switcher with 2.5μA Quiescent Current
PDF  30 Pages
Scroll/Zoom Zoom In 100%  Zoom Out
Manufacturer  AD [Analog Devices]
Direct Link  http://www.analog.com
Logo AD - Analog Devices

LT8613 Datasheet(HTML) 20 Page - Analog Devices

Back Button LT8613 Datasheet HTML 16Page - Analog Devices LT8613 Datasheet HTML 17Page - Analog Devices LT8613 Datasheet HTML 18Page - Analog Devices LT8613 Datasheet HTML 19Page - Analog Devices LT8613 Datasheet HTML 20Page - Analog Devices LT8613 Datasheet HTML 21Page - Analog Devices LT8613 Datasheet HTML 22Page - Analog Devices LT8613 Datasheet HTML 23Page - Analog Devices LT8613 Datasheet HTML 24Page - Analog Devices Next Button
Zoom Inzoom in Zoom Outzoom out
 20 / 30 page
background image
LT8645S-2
20
Rev. A
For more information www.analog.com
APPLICATIONS INFORMATION
To avoid overheating and poor efficiency, an inductor must
be chosen with an RMS current rating that is greater than
the maximum expected output load of the application.
In addition, the saturation current (typically labeled ISAT)
rating of the inductor must be higher than the load current
plus 1/2 of in inductor ripple current:
IL(PEAK) =ILOAD(MAX) +
1
2
ΔIL
(7)
where ∆IL is the inductor ripple current as calculated in
Equation 9 and ILOAD(MAX) is the maximum output load
for a given application.
As a quick example, an application requiring 2A output
should use an inductor with an RMS rating of greater than
2A and an ISAT of greater than 3A. During long duration
overload or short-circuit conditions, the inductor RMS
rating requirement is greater to avoid overheating of the
inductor. To keep the efficiency high, the series resistance
(DCR) should be less than 0.02Ω, and the core material
should be intended for high frequency applications.
The LT8645S-2 limits the peak switch current in order to
protect the switches and the system from overload faults.
The top switch current limit (ILIM) is 14A at low duty cycles
and decreases linearly to 11.5A at DC = 0.9. The inductor
value must then be sufficient to supply the desired maxi-
mum output current (IOUT(MAX)), which is a function of the
switch current limit (ILIM) and the ripple current.
IOUT(MAX) =ILIM −
ΔIL
2
(8)
The peak-to-peak ripple current in the inductor can be
calculated as follows:
ΔIL =
VOUT
L • fSW
• 1
−
VOUT
VIN(MAX)
⎛
⎝
⎜
⎞
⎠
⎟
(9)
where fSW is the switching frequency of the LT8645S-2,
and L is the value of the inductor. Therefore, the maximum
output current that the LT8645S-2 will deliver depends on
the switch current limit, the inductor value, and the input
and output voltages. The inductor value may have to be
increased if the inductor ripple current does not allow
sufficient maximum output current (IOUT(MAX)) given the
switching frequency, and maximum input voltage used in
the desired application.
When operating at high VIN (greater than 40V) and at
a frequency and duty cycle that would require a switch
on-time of less than 100ns, choose an inductor such that
the ∆IL is greater than 1.5A in order to prevent duty cycle
jitter.
In order to achieve higher light load efficiency, more
energy must be delivered to the output during the sin-
gle small pulses in Burst Mode operation such that the
LT8645S-2 can stay in sleep mode longer between each
pulse. This can be achieved by using a larger value induc-
tor (i.e., 4.7µH), and should be considered independent
of switching frequency when choosing an inductor. For
example, while a lower inductor value would typically be
used for a high switching frequency application, if high
light load efficiency is desired, a higher inductor value
should be chosen. See curve in Typical Performance
Characteristics.
The optimum inductor for a given application may differ
from the one indicated by this design guide. A larger value
inductor provides a higher maximum load current and
reduces the output voltage ripple. For applications requir-
ing smaller load currents, the value of the inductor may be
lower and the LT8645S-2 may operate with higher ripple
current. This allows use of a physically smaller inductor,
or one with a lower DCR resulting in higher efficiency. Be
aware that low inductance may result in discontinuous
mode operation, which further reduces maximum load
current.
For more information about maximum output current and
discontinuous operation, see Analog Devices Application
Note 44.
For duty cycles greater than 50% (VOUT/VIN > 0.5), a min-
imum inductance is required to avoid subharmonic oscil-
lation (See Equation 10). See Analog Devices Application
Note 19 for more details.
LMIN =
VIN(2•DC−1)
3
•fSW
(10)
where DC is the duty cycle ratio (VOUT/VIN) and fSW is the
switching frequency.



Html Pages

1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30


Datasheet Download

Go To PDF Page


Link URL



Does ALLDATASHEET help your business so far?  [ DONATE ] 

About Alldatasheet   |   Advertisement   |   Contact us   |   Privacy Policy   |   Link to Datasheet    |   Link Exchange   |   Manufacturer List
All Rights Reserved©Alldatasheet.com


Mirror Sites
English : Alldatasheet.com  |   English : Alldatasheet.net  |   Chinese : Alldatasheetcn.com  |   German : Alldatasheetde.com  |   Japanese : Alldatasheet.jp
Russian : Alldatasheetru.com  |   Korean : Alldatasheet.co.kr  |   Spanish : Alldatasheet.es  |   French : Alldatasheet.fr  |   Italian : Alldatasheetit.com
Portuguese : Alldatasheetpt.com  |   Polish : Alldatasheet.pl  |   Vietnamese : Alldatasheet.vn
Indian : Alldatasheet.in  |   Mexican : Alldatasheet.com.mx  |   British : Alldatasheet.co.uk  |   New Zealand : Alldatasheet.co.nz
Family Site : ic2ic.com  |   icmetro.com