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LM5145 데이터시트(PDF) 29 Page - Texas Instruments

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부품명 LM5145
상세설명  LM5148 80-V, Synchronous, Buck DC/DC Controller with Ultra-Low IQ and Dual Random Spread Spectrum
PDF  70 Pages
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제조업체  TI [Texas Instruments]
홈페이지  http://www.ti.com
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LM5145 데이터시트(HTML) 29 Page - Texas Instruments

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dominates. However, depending on package and voltage rating of the ceramic capacitor, the effective
capacitance can drop quite significantly with applied DC voltage and operating temperature.
Ignoring the ESR term in Equation 15 gives a quick estimation of the minimum ceramic capacitance necessary
to meet the output ripple specification. Two to four 47-µF, 10-V, X7R capacitors in 1206 or 1210 footprint is a
common choice for a 5-V output. Use Equation 16 to determine if additional capacitance is necessary to meet
the load-off transient overshoot specification.
A composite implementation of ceramic and electrolytic capacitors highlights the rationale for paralleling
capacitors of dissimilar chemistries yet complementary performance. The frequency response of each capacitor
is accretive in that each capacitor provides desirable performance over a certain portion of the frequency range.
While the ceramic provides excellent mid- and high-frequency decoupling characteristics with its low ESR and
ESL to minimize the switching frequency output ripple, the electrolytic device with its large bulk capacitance
provides low-frequency energy storage to cope with load transient demands.
9.1.1.3 Input Capacitors
Input capacitors are necessary to limit the input ripple voltage to the buck power stage due to switching-
frequency AC currents. TI recommends using X7S or X7R dielectric ceramic capacitors to provide low
impedance and high RMS current rating over a wide temperature range. To minimize the parasitic inductance
in the switching loop, position the input capacitors as close as possible to the drain of the high-side MOSFET
and the source of the low-side MOSFET. The input capacitor RMS current for a single-channel buck regulator is
given by Equation 17.
2
2
L
CIN,rms
OUT
I
I
D
I
1 D
12
§
·
'
¨
¸
˜
˜
¨
¸
©
¹
(17)
The highest input capacitor RMS current occurs at D = 0.5, at which point, the RMS current rating of the input
capacitors must be greater than half the output current.
Ideally, the DC component of input current is provided by the input voltage source and the AC component by the
input filter capacitors. Neglecting inductor ripple current, the input capacitors source current of amplitude (IOUT −
IIN) during the D interval and sinks IIN during the 1−D interval. Thus, the input capacitors conduct a square-wave
current of peak-to-peak amplitude equal to the output current. It follows that the resultant capacitive component
of AC ripple voltage is a triangular waveform. Together with the ESR-related ripple component, the peak-to-peak
ripple voltage amplitude is given by Equation 18.
OUT
IN
OUT
ESR
SW
IN
I
D
1
D
V
I
R
F
C
˜
˜
'
˜
˜
(18)
The input capacitance required for a particular load current, based on an input voltage ripple specification of
ΔVIN, is given by Equation 19.
OUT
IN
SW
IN
ESR
OUT
D
1 D
I
C
F
V
R
I
˜
˜
t
˜ '
˜
(19)
Low-ESR ceramic capacitors can be placed in parallel with higher valued bulk capacitance to provide optimized
input filtering for the regulator and damping to mitigate the effects of input parasitic inductance resonating
with high-Q ceramics. One bulk capacitor of sufficiently high current rating and four 10-μF 50-V X7R ceramic
decoupling capacitors are usually sufficient for 12-V battery automotive applications. Select the input bulk
capacitor based on its ripple current rating and operating temperature range.
Of course, a two-channel buck regulator with 180° out-of-phase interleaved switching provides input ripple
current cancellation and reduced input capacitor current stress. The above equations represent valid calculations
when one output is disabled and the other output is fully loaded.
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LM5148
SNVSC01 – FEBRUARY 2023
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