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MP3387AGRT 데이터시트(PDF) 12 Page - Monolithic Power Systems

부품명 MP3387AGRT
상세설명  6-String, Max 80mA/String, Step-Up, White LED Driver with Combined Analog and PWM Dimming
PDF  16 Pages
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제조업체  MPS [Monolithic Power Systems]
홈페이지  http://www.monolithicpower.com
Logo MPS - Monolithic Power Systems

MP3387AGRT 데이터시트(HTML) 12 Page - Monolithic Power Systems

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MP3387A ― 6-STRINGS, MAX 80MA/STRING, STEP-UP, WHITE LED DRIVER
MP3387A Rev. 1.0
www.MonolithicPower.com
12
5/17/2017
MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited.
© 2017 MPS. All Rights Reserved.
APPLICATION INFORMATION
Selecting the Switching Frequency
The switching frequency of the step-up converter
is recommended to be between 500kHz and
1.2MHz for most applications. An oscillator
resistor on FREQ sets the internal oscillator
frequency for the step-up converter according to
Equation (1):
SW
OSC
62500
F(kHz)
R(k )
(1)
For ROSC = 100kΩ, the switching frequency is
625kHz.
Setting the LED Current
The current of each string is identical and set
through the current setting resistor on ISET,
which can be calculated with Equation (2):
SET
SET
1.24(V)
I
1000
R(k)

(2)
For RSET = 62kΩ, the LED current is 20mA. ISET
cannot be open.
Selecting the Input Capacitor
The input capacitor reduces surge current drawn
from the input supply and switching noise from
the device. The input capacitor impedance at the
switching frequency should be less than the input
source impedance to prevent the high-frequency
switching current from passing through to the
input. Use ceramic capacitors with X5R or X7R
dielectrics
for
their
low
ESR
and
small
temperature coefficients. For most applications, a
4.7μF ceramic capacitor is sufficient.
Selecting the Inductor
The MP3387A requires an inductor to supply a
higher output voltage while being driven by the
input voltage. A larger-value inductor results in
less ripple current, lower peak inductor current,
and less stress on the internal N-channel
MOSFET. However, the larger-value inductor
also has a larger physical size, higher series
resistance, and lower saturation current.
Choose an inductor that will not saturate under
worst-case load conditions. Select the minimum
inductor value to ensure that the boost converter
works in continuous conduction mode with high
efficiency and good EMI performance.
Calculate the required inductance value using
Equation (3) and Equation (4):

 

2
OUT
SW
LOAD
η V
D (1 D)
L
2
f
I
(3)

IN
OUT
V
D1
V
(4)
Where VIN is the input voltage, VOUT is the output
voltage, fSW is the switching frequency, ILOAD is
the LED load current, and η is the efficiency.
With a given inductor value, the inductor DC
current rating is at least 40% higher than the
maximum input peak inductor current for most
applications. The inductor’s DC resistance should
be as small as possible to achieve a higher
efficiency.
Selecting the Output Capacitor
The output capacitor keeps the output voltage
ripple small and ensures feedback loop stability.
The output capacitor impedance must be low at
the switching frequency. Ceramic capacitors with
X7R dielectrics are recommended for their low
ESR characteristics. For most applications, a
2.2μF ceramic capacitor is sufficient.
Setting the Over-Voltage Protection
Open-string protection is achieved through the
detection of the voltage on OVP. In some
unexpected cases, the part continues boosting
the output voltage higher and higher. If the output
voltage reaches the programmed OVP threshold,
the protection triggers.
To ensure that the chip functions properly, select
the resistor values for the OVP resistor divider to
provide
an
appropriate
set
voltage.
The
recommended OVP point is about 1.1 to 1.2
times higher than the output voltage for normal
operation. The OVP voltage can be calculated
with Equation (5):
HIGH
OVP
LOW
R
V1.2(V) (1
)
R
 
(5)



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