LT3498EDDB#TRMPBF Linear Technology, LT3498EDDB#TRMPBF Datasheet - Page 13

IC LED DRVR WT/OLED BCKLGT 12DFN

LT3498EDDB#TRMPBF

Manufacturer Part Number
LT3498EDDB#TRMPBF
Description
IC LED DRVR WT/OLED BCKLGT 12DFN
Manufacturer
Linear Technology
Type
Backlight, OLED, White LEDr
Datasheet

Specifications of LT3498EDDB#TRMPBF

Topology
PWM, Step-Up (Boost)
Number Of Outputs
1
Internal Driver
Yes
Type - Primary
Backlight
Type - Secondary
OLED, White LED
Frequency
1.8MHz ~ 2.8MHz
Voltage - Supply
2.5 V ~ 12 V
Voltage - Output
32V
Mounting Type
Surface Mount
Package / Case
12-DFN
Operating Temperature
-40°C ~ 85°C
Current - Output / Channel
20mA
Internal Switch(s)
Yes
No. Of Outputs
2
Output Current
200mA
Output Voltage
32V
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
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
Efficiency
-
Other names
LT3498EDDB#TRMPBFTR

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APPLICATIONS INFORMATION— LED DRIVER
The time it takes for the LED current to reach its pro-
grammed value sets the achievable dimming range for a
given PWM frequency. For example, the settling time of
the LED current in Figure 6 is approximately 40μs for a
3V input voltage. The achievable dimming range for this
application and 100Hz PWM frequency can be determined
using the following method.
Example:
The calculations show that for a 100Hz signal the dimming
range is 250:1. In addition, the minimum PWM duty cycle
of 0.4% ensures that the LED current has enough time to
settle to its fi nal value. Figure 8 shows the dimming range
achievable for three different frequencies with a settling
time of 40μs.
Dim Range =
Min Duty Cycle =
Duty Cycle Range = 100% → 0.4% at 100Hz
f = 100Hz, t
t
t
t
PERIOD
SETTLE
PERIOD
10000
1000
100
10
Figure 8. Dimming Ratio vs Freqeuncy
1
=
• 100 =
10
1
f
SETTLE
=
t
100
t
PERIOD
SETTLE
1
PULSING MAY BE VISIBLE
0.01s
PWM FREQUENCY (Hz)
40μs
100
= 0.01s
= 40μs
=
• 100 = 0.4%
0.01s
40μs
1000
= 250 : 1
3498 F08
10000
The dimming range can be further extended by changing
the amplitude of the PWM signal. The height of the PWM
signal sets the commanded sense voltage across the sense
resistor through the CTRL1 pin. In this manner both analog
dimming and direct PWM dimming extend the dimming
range for a given application. The color of the LEDs no
longer remains constant because the forward current of
the LED changes with the height of the CTRL1 signal. For
the four LED application described above, the LEDs can
be dimmed fi rst, modulating the duty cycle of the PWM
signal. Once the minimum duty cycle is reached, the height
of the PWM signal can be decreased below 1.5V down to
125mV. The use of both techniques together allows the
average LED current for the four LED application to be
varied from 20mA down to less than 20μA. Figure 9 shows
the application for dimming using both analog dimming
and PWM dimming. A potentiometer must be added to
ensure that the gate of the NMOS receives a logic-level
signal, while the CTRL1 signal can be adjusted to lower
amplitudes.
C
OUT1
1μF
Si2304BDS
R
Figure 9. Li-Ion to Four White LEDs with
Both PWM Dimming and Analog Dimming
SENSE1
10Ω
Q1
100k
PWM
FREQ
5V
0V
LED1
CTRL1
CAP1 SW1
GND1
15μH
L1
GND2
LT3498
V
V
IN
IN
3V TO 5V
SW2
CTRL2
LT3498
CAP2 V
FB2
13
C
1μH
OUT2
IN
3498 F09
3498fa

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