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AP64352 데이터시트(PDF) 16 Page - Diodes Incorporated

부품명 AP64352
상세설명  3.8V TO 40V INPUT, 3.5A LOW IQ SYNCHRONOUS BUCK WITH INTERNAL COMPENSATION
PDF  21 Pages
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제조업체  DIODES [Diodes Incorporated]
홈페이지  http://www.diodes.com
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AP64352 데이터시트(HTML) 16 Page - Diodes Incorporated

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AP64352
Document number: DS41978 Rev. 5 - 2
16 of 21
www.diodes.com
August 2019
© Diodes Incorporated
AP64352
Application Information (cont.)
13
Inductor
Calculating the inductor value is a critical factor in designing a buck converter. For most designs, the following equation can be used to calculate
the inductor value:
Eq. 9
Where:
∆IL is the inductor current ripple
fSW is the buck converter switching frequency
For AP64352
, choose ∆IL to be 30% to 50% of the maximum load current of 3.5A.
The inductor peak current is calculated by:
Eq. 10
Peak current determines the required saturation current rating, which influences the size of the inductor. Saturating the inductor decreases the
converter efficiency while increasing the temperatures of the inductor and the internal power MOSFETs. Therefore, choosing an inductor with the
appropriate saturation current rating is important. For most applications, it is recommended to select an inductor of approximately 2.2µH to 10µH
with a DC current rating of at least 35% higher than the maximum load current. For highest efficiency, the inductor’s DC resistance should be less
than 3
0mΩ. Use a larger inductance for improved efficiency under light load conditions.
14
Input Capacitor
The input capacitor reduces both the surge current drawn from the input supply as well as the switching noise from the device. The input capacitor
must sustain the ripple current produced during the on-time of Q1. It must have a low ESR to minimize power dissipation due to the RMS input
current.
The RMS current rating of the input capacitor is a critical parameter and must be higher than the RMS input current. As a rule of thumb, select an
input capacitor with an RMS current rating greater than half of the maximum load current.
Due to large dI/dt through the input capacitor, electrolytic or ceramic capacitors with low ESR should be used. If using a tantalum capacitor, it must
be surge protected or else capacitor failure could occur. Using a ceramic capacitor greater than 10µF is sufficient for most applications.



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