LT3591EDDB#TRMPBF Linear Technology, LT3591EDDB#TRMPBF Datasheet - Page 9

IC LED DRIVER WHITE BCKLGT 8-DFN

LT3591EDDB#TRMPBF

Manufacturer Part Number
LT3591EDDB#TRMPBF
Description
IC LED DRIVER WHITE BCKLGT 8-DFN
Manufacturer
Linear Technology
Type
Backlight, White LEDr
Datasheet

Specifications of LT3591EDDB#TRMPBF

Topology
PWM, Step-Up (Boost)
Number Of Outputs
1
Internal Driver
Yes
Type - Primary
Backlight
Type - Secondary
White LED
Frequency
750kHz ~ 1.2MHz
Voltage - Supply
2.5 V ~ 12 V
Mounting Type
Surface Mount
Package / Case
8-DFN
Operating Temperature
-40°C ~ 85°C
Current - Output / Channel
300mA
Internal Switch(s)
Yes
No. Of Outputs
1
Output Current
300mA
Output Voltage
24V
Input Voltage
2.5V To 12V
Dimming Control Type
PWM / DC
Operating Temperature Range
-40°C To +85°C
Driver Case Style
DFN
Rohs Compliant
Yes
Led Driver Application
Cell Phones, PDA
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
Voltage - Output
-
Efficiency
-
Other names
LT3591EDDB#TRMPBFTR

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APPLICATIONS INFORMATION
Table 4. R
DIMMING CONTROL
There are three different types of dimming control circuits.
The LED current can be set by modulating the CTRL pin
with a DC voltage, a fi ltered PWM signal or directly with
a PWM signal.
Using a DC Voltage
For some applications, the preferred method of brightness
control is a variable DC voltage to adjust the LED current.
The CTRL pin voltage can be modulated to set the dim-
ming of the LED string. As the voltage on the CTRL pin
increases from 0V to 1.5V, the LED current increases from
0 to I
it has no effect on the LED current.
The LED current can be set by:
Feedback voltage variation versus control voltage is given
in the Typical Performance Characteristics.
Using a Filtered PWM Signal
A fi ltered PWM signal can be used to control the
brightness of the LED string. The PWM signal is fi ltered
(Figure 5) by a RC network and fed to the CTRL pin.
I
I
LED
LED
Figure 5. Dimming Control Using a Filtered PWM Signal
LED
. As the CTRL pin voltage increases beyond 1.5V,
SENSE
R
200
6
I
LED
.2 2 5
SENSE
10kHz TYP
10
15
20
5
(mA)
Value Selection for 200mV Sense
mV
V
PWM
CTRL
R
,
SENSE
when V
100k
R1
,
when V
CTRL
C1
0.1 F
CTRL
CTRL
LT3591
1 5
.
3591 F05
R
V
SENSE
13.3
1 25
40
20
10
.
(Ω)
V
The corner frequency of R1, C1 should be much lower
than the frequency of the PWM signal. R1 needs to be
much smaller than the internal impedance of the CTRL
pin which is 10MΩ (typ).
Direct PWM Dimming
Changing the forward current fl owing in the LEDs not only
changes the intensity of the LEDs, it also changes the color.
The chromaticity of the LEDs changes with the change in
forward current. Many applications cannot tolerate any
shift in the color of the LEDs. Controlling the intensity of
the LEDs with a direct PWM signal allows dimming of the
LEDs without changing the color. In addition, direct PWM
dimming offers a wider dimming range to the user.
Dimming the LEDs via a PWM signal essentially involves
turning the LEDs on and off at the PWM frequency. The
typical human eye has a limit of ~60 frames per second.
By increasing the PWM frequency to ~80Hz or higher,
the eye will interpret that the pulsed light source is con-
tinuously on. Additionally, by modulating the duty cycle
(amount of “on-time”), the intensity of the LEDs can be
controlled. The color of the LEDs remains unchanged in
this scheme since the LED current value is either zero or
a constant value.
Figure 6 shows a Li-Ion powered driver for ten white LEDs.
Direct PWM dimming method requires an external NMOS
tied between the cathode of the lowest LED in the string
3V TO
Figure 6. Li-Ion to Ten White LEDs with Direct PWM Dimming
V
5V
IN
22 H
C1
1 F
L1
5V
0V
PWM
FREQ
SW
GND
LT3591
CTRL
V
IN
100k
CAP
LED
R
10
SENSE
Q1
Si2308
LT3591
C2
2.2 F
9
3591f

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