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LP3209 Datasheet(PDF) 7 Page - Lowpower Semiconductor inc

Part # LP3209
Description  1.5MHz, 1.5A Step-Down Converter
PDF  10 Pages
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Manufacturer  POWER [Lowpower Semiconductor inc]
Direct Link  http://www.lowpowersemi.com
Logo POWER - Lowpower Semiconductor inc

LP3209 Datasheet(HTML) 7 Page - Lowpower Semiconductor inc

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LP3209-01
Jul.-2017
Email: marketing@lowpowersemi.com
www.lowpowersemi.com
Page 7 of 10
Preliminary Datasheet
LP3209
Dropout Operation
When the battery input voltage decreases near the value of
the output voltage, the LP3201 allows the main switch to
remain on for more than one switching cycle and increases
the duty cycle until it reaches 100%. The duty cycle D of a
step-down converter is defined as:
Where tON is the main switch on time and fOSC is the oscillator
frequency. The output voltage then is the input voltage minus
the voltage drop across the main switch and the inductor. At
low input supply voltage, the RDS(ON) of the P-channel
MOSFET increases, and the efficiency of the converter
decreases. Caution must be exercised to ensure the heat
dissipated does not exceed the maxi-mum junction
temperature of the IC.
Setting the Output Voltage
The LP3209 can be externally programmed. Resistors R1 and
R2 program the output to regulate at a voltage higher than
0.6V. To limit the bias current required for the external
feedback resistor string while maintaining good noise
immunity, the minimum suggested value for R1 is 50kΩ.
Although a larger value will further reduce quiescent current, it
will also increase the impedance of the feedback node,
making it more sensitive to external noise and interference.
The LP3209, combined with an external feed forward
capacitor (C3), delivers enhanced transient response for
extreme pulsed load applications. The addition of the feed
forward capacitor typically requires a larger output capacitor
C2 for stability. The external resistor sets the output voltage
according to the following equation:
Inductor Selection
For most designs, the LP3201 operates with inductor values
of 1μH to 2.2μH. Low inductance values are physically smaller
but require faster switching, which results in some efficiency
loss. The inductor value can be derived from the following
equation:
Where ΔIL is inductor ripple current. Large value inductors
lower ripple current and small value inductors result in high
ripple currents. Choose inductor ripple current approximately
60% of the maximum load current 1.5A, or
For output voltages above 2.0V, when light-load efficiency is
important, the minimum recommended inductor is 1μH.
Manufacturer’s specifications list both the inductor DC current
rating, which is a thermal limitation, and the peak current
rating, which is determined by the saturation characteristics.
The inductor should not show any appreciable saturation
under normal load conditions. Some inductors may meet the
peak and average current ratings yet result in excessive
losses due to a high DCR.
Always consider the losses associated with the DCR and its
effect on the total converter efficiency when selecting an
inductor. For optimum voltage-positioning load transients,
choose an inductor with DC series resistance in the 20mΩ to
100mΩ range. For higher efficiency at heavy loads (above
200mA), or minimal load regulation (but some transient
overshoot), the resistance should be kept below 100mΩ.
The DC current rating of the inductor should be at least equal
to the maximum load current plus half the ripple current to
prevent core saturation (1.5A + 450mA).



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