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LM3464MH датащи(PDF) 13 Page - National Semiconductor (TI)

[Old version datasheet] Texas Instruments acquired National semiconductor.
номер детали LM3464MH
подробное описание детали  LED Driver with Dynamic Headroom Control and Thermal Control Interfaces
PDF  22 Pages
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производитель  NSC [National Semiconductor (TI)]
домашняя страница  http://www.national.com
Logo NSC - National Semiconductor (TI)

LM3464MH датащи(HTML) 13 Page - National Semiconductor (TI)

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30115011
FIGURE 6. LED Current vs R
ISNSx
RESPONSE OF THE LM3464/64A DRIVER STAGE
In order to ensure good operation stability of the entire sys-
tem, the response of the LM3464/64A circuitry must be set
slower than the primary power supply. The response of the
LM3464/64A is decided by the value of the capacitor, C
DHC.
In general, a higher capacitance C
DHC will result in slower re-
sponse of the LM3464/64A driver stage.
Generally, a first order integrator that consists of C
DHC and a
transconductance amplifier with g
m = 76umho and +/– 15uA
current limit as shown in Figure 7 defines the frequency re-
sponse of the LM3464/64A driver stage.
30115030
FIGURE 7. Simplified Circuit of the Frequency Response
Setting Mechanism
The transconductance amplifier serves as a voltage to current
converter that charges C
DHC with a current proportional to the
difference in voltage between the DRx and VDHC pins.
As the voltage of the OutP pin is equal to V
CC – VCDHC, the
capacitance of C
DHCdecide the rate of change of the OutP pin
voltage and eventually limits the frequency response of the
whole system . The higher capacitance the C
DHC has, the
longer time the OutP pins takes for certain voltage change.
Thus the value of C
DHC
decides the response of the
LM3464/64A driver stage.
If the response of the LM3464/64A driver stage is set faster
than that of the primary power supply, the entire system will
suffer from unstable operation. However, setting the re-
sponse of the LM3464/64A driver stage unnecessarily slow
will worsen transient performance of the system and false
trigger the fault detection mechanism of the LM3464/64A.
Practically, the minimum value of the C
DHC can be found out
by means of ‘try and error’. In most cases, a 1uF 16V ceramic
capacitor is a good starting point that sets the response of the
LM3464/64A driver stage slow enough for initial trial.
The value of the C
DHC capacitor can be reduced to speed up
the response of the LM3464/64A driver stage. Otherwise, in
case the system is unstable with 1uF C
DHC, the capacitance
of the C
DHC capacitor should be increased until the entire
system get into stable operation.
This approach is effectively setting the cut-off frequency of the
LM3464/64A driver stage lower than that of the primary power
supply. Usually, setting the cut-off frequencies of the two
stages apart can help avoiding unstable operation. The cut-
off frequency of the LM3464/64A driver stage is governed by
the follow equation:
THERMAL FOLDBACK INTERFACE
The thermal foldback function of the LM3464/64A helps in re-
ducing the average LED currents and prolonging the LED
lifetime under high temperature. The Thermal pin of the
LM3464/64A is an analog input for thermal foldback control
that accepts DC voltage from 0V to V
CC. The thermal foldback
control circuitry reduces the average LED currents by means
of PWM dimming as shown in Figure 8:
30115040
FIGURE 8. Average LED Current Reduces According to
V
Thermal
The dimming frequency is defined by a sawtooth waveform
that generated by charging and discharging the capacitor
C
THM which connects across the Thermal_Cap pin and GND.
The LM3464/64A charges the C
THM up to 3.25V with 50uA
constant current and discharge the C
THM by pulling the
Thermal_Cap pin to ground until the pin voltage equals 0.4V.
By comparing the voltage at the Thermal pin to the sawtooth
voltage being generated at the Thermal_Cap pin of the
LM3464/64A, a PWM dimming signal for thermal foldback is
generated as shown in Figure 9:
13
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