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LM3550 Datasheet(PDF) 21 Page - Texas Instruments

Part # LM3550
Description  LM3550 5-A Super-Capacitor Flash LED Driver
PDF  43 Pages
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Manufacturer  TI2 [Texas Instruments]
Direct Link  https://www.ti.com
Logo TI2 - Texas Instruments

LM3550 Datasheet(HTML) 21 Page - Texas Instruments

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Shutdown
Charge
Flash
Charge and
Torch
Torch
Optimal
Charge
Mode
Voltage
Mode
Charge
21
LM3550
www.ti.com
SNVS569C – MAY 2009 – REVISED OCTOBER 2016
Product Folder Links: LM3550
Submit Documentation Feedback
Copyright © 2009–2016, Texas Instruments Incorporated
Device Functional Modes (continued)
7.4.1.8 State Diagram FGATE = 1
By default, the LM3550 prevents a flash event from occurring if the super-capacitor has not reached the target
voltage (EOC = 0). In the event that this restriction is not desired, the flash gate bit (FGATE in the General
Purpose Register) can be set to a 1 disabling the end-of-charge requirement. Setting FGATE to a 1 allows the
flash state to be entered at anytime. If the super-capacitor is not charged to the proper voltage before the EOC
pin indicates a full charge, the perceived duration and flash level could be lower than desired.
Figure 41. FGATE = 1 State Diagram
7.4.1.9 Optimal Charge Mode vs Fixed Voltage Mode
The LM3550 provides two types of super-capacitor charging modes: fixed voltage and optimal charge.
In fixed voltage mode, the LM3550 charges and regulate the super-capacitor to either 4.5 V, 5 V, or 5.3 V. This
mode is useful if the LM3550 is going to be used for both flash and fixed-rail applications (power supply for audio
or PA sub-systems).
If the LM3550 is only going to be used as a super-capacitor charger and flash controller, the optimal charge
mode provides many advantages over the fixed voltage mode. optimal charge mode charges the super-capacitor
to the minimum voltage that is required to sustain a flash pulse compensating for variations in super-capacitor
ESR and LED forward voltage due to temperature and process. To properly use the optimal charge mode, the
overhead voltage (VOH) must be determined. The overhead voltage is equal to the voltage required to maintain
current source regulation (VHR) plus the voltage droop (VDROOP) on the super-capacitor due to the flash event.
VOH = VDROOP + VHR = (IFLASH × tFLASH / CSC) + VFB + (IFLASH × RDSDON)
(6)
and
VCAP = VOH + VLED + [IFLASH × (RESR+ RBAL / N)]
where
N = Number of flash LEDs
(7)



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