ST1S10 STMicroelectronics, ST1S10 Datasheet - Page 8

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ST1S10

Manufacturer Part Number
ST1S10
Description
Monolithic synchronous step-down regulator
Manufacturer
STMicroelectronics
Datasheet

Specifications of ST1S10

Input Voltage Range
2.5 V to 18 V
Max Iout
3 A
High Internal Switching Frequency
900 kHz
Quiescent Current
< 6 μA in inhibit state

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Application information
5
5.1
5.2
5.2.1
8/26
Application information
Description
The ST1S10 is a high efficiency synchronous step-down DC-DC converter with inhibit
function. It provides up to 3 A over an input voltage range of 2.5 V to 18 V, and the output
voltage can be adjusted from 0.8 V up to 85% of the input voltage level. The synchronous
rectification removes the need for an external Schottky diode and allows higher efficiency
even at very low output voltages.
A high internal switching frequency (0.9 MHz) allows the use of tiny surface-mount
components, as well as a resistor divider to set the output voltage value. In typical
application conditions, only an inductor and 3 capacitors are required for proper operation.
The device can operate in PWM mode with a fixed frequency or synchronized to an external
frequency through the SYNC pin. The current mode PWM architecture and stable operation
with low ESR SMD ceramic capacitors results in low, predictable output ripple. No external
compensation is needed.
To maximize power conversion efficiency, the ST1S10 works in pulse skipping mode at light
load conditions and automatically switches to PWM mode when the output current
increases.
The ST1S10 is equipped with thermal shut down protection activated at 150 °C (typ.).
Cycle-by-cycle short circuit protection provides protection against shorted outputs for the
application and the regulator. An internal soft start for start-up current limiting and power ON
delay of 275 µs (typ.) helps to reduce inrush current during start-up.
External components selection
Input capacitor
The ST1S10 features two V
switching peak current is drawn, and V
drivers.
The V
and reduces switching noise in the IC. A high power supply source impedance requires
larger input capacitance.
For the V
higher than the RMS input current. The maximum RMS input current can be calculated
using the following equation:
Equation 1
where η is the expected system efficiency, D is the duty cycle and I
current. The duty cycle can be derived using the equation:
I
I
RMS
RMS
=
=
IN_SW
I
I
IN_SW
O
O
input capacitor reduces the current peaks drawn from the input power supply
D
D
input capacitor the RMS current rating is a critical parameter that must be
-
-
2
2
η
η
D
D
2
2
+
+
IN
D
D
pins: V
Doc ID 13844 Rev 4
η
η
2
2
IN_SW
IN_A
to supply the ST1S10 internal circuitry and
for the power supply input voltage where the
O
is the output DC
ST1S10

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