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MP3394ES 数据表(PDF) 11 Page - Monolithic Power Systems

部件名 MP3394ES
功能描述  Step-up, 4-String Max 200mA/String White LED Driver
PDF  17 Pages
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制造商  MPS [Monolithic Power Systems]
网页  http://www.monolithicpower.com
标志 MPS - Monolithic Power Systems

MP3394ES 数据表(HTML) 11 Page - Monolithic Power Systems

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MP3394—4-STRING, MAX 200mA/STRING WHITE LED DRIVER
MP3394 Rev. 1.07
www.MonolithicPower.com
11
3/21/2013
MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited.
© 2013 MPS. All Rights Reserved.
APPLICATION INFORMATION
Selecting the Switching Frequency
The switching frequency of the step-up converter
is recommended from 150kHz to 500kHz for
most of application. An oscillator resistor on OSC
pin sets the internal oscillator frequency for the
step-up converter according to the equation:
fSW(kHz) = 62100 / ROSC(kΩ)
For ROSC=330kΩ, the switching frequency is set
to 188 kHz.
Setting the LED Current
The LED string currents are identical and set
through the current setting resistor on the ISET
pin.
ILED(mA) = 790 x 1.23V / (RSET+0.4)(kΩ)
For RSET=7.68kΩ, the LED current is set to
120mA. The ISET pin can not be open.
Selecting the Input Capacitor
The input capacitor reduces the surge current
drawn from the input supply and the switching
noise from the device. The input capacitor
impedance at the switching frequency should be
less than the input source impedance to prevent
high frequency switching current from passing
through the input. Ceramic capacitors with X5R
or X7R dielectrics are highly recommended
because of their low ESR and small temperature
coefficients. For most applications, a 4.7μF
ceramic capacitor paralleled a 220uF electrolytic
capacitor is sufficient.
Selecting the Inductor and Current Sensing
Resistor
The inductor is required to force the higher output
voltage while being driven by the input voltage. A
larger value inductor results in less ripple current,
resulting in lower peak inductor current and
reducing stress on the internal N-Channel
MOSFET. However, the larger value inductor has
a
larger
physical
size,
higher
series
resistance,and lower saturation current.
Choose an inductor that does not saturate under
the worst-case load conditions. The minimum
value of inductor is selected to ensure that the
boost converter works in continuous conduction
mode for high efficiency and good EMI
performance.
Calculate the required inductance value by the
equation:
2
OUT
SW
LOAD
η V
D (1 D)
L
2
f
I
××
× −
××
OUT
IN
V
V
1
D
=
Where VIN and VOUT is the input and output
voltage, fSW is the switching frequency, ILOAD is
the LED load current, and η is the efficiency.
The switch current is usually used for the peak
current mode control. In order to avoid hitting the
current limit, the voltage across the sensing
resistor RSENSE should be less than 80% of the
worst case current limit voltage, VSENSE.
SENSE
SENSE
L(PEAK)
0.8 V
R
I
×
=
OUT
LOAD
IN
OUT
IN
L(PEAK)
IN
SW
OUT
VI
V
(V
-V )
I
ηV
2 L f
V
××
=+
××
×
Where IL(PEAK) is the peak value of the inductor
current. VSENSE is shown in Figure 3.
DUTY CYCLE (%)
Vsense vs. Duty Cycle
0
100
200
300
400
500
0 1020 3040 50 6070 8090100
Figure 3—VSENSE vs Duty Cycle
Selecting the Power MOSFET
The MP3394 is capable of driving a wide variety
of N-Channel power MOSFETS. The critical
parameters of selection of a MOSFET are:
1. Maximum drain to source voltage, VDS(MAX)
2. Maximum current, ID(MAX)
3. On-resistance, RDS(ON)
4. Gate source charge QGS and gate drain
charge QGD
5. Total gate charge, QG



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