MAXIM AN1156

MICROPROCESSOR SUPERVISOR CIRCUITS
Jul 29, 2002
Low-Cost AC Supply
The following application note discusses a low-cost solution to implement a
3V, 3.3V or 5V logic supply from AC power. It uses the MAX6330 shunt
regulator which can supply up to 50mA as well as offering a reset output
(power-on reset, POR).
One often needs a low-cost logic supply for powering the MCU and related control circuitry in
"white goods" products such as industrial controllers and sensors. Those applications usually
include 24VAC, 115VAC, or higher levels of AC power for conversion to 3.3V or 5.0V. (The
following circuit suits applications that include 24VAC. With proper safety precautions, it can also
be applied to double-insulated white goods and other products that require a logic supply for
control or monitoring functions.)
The simplest approach for generating low-current logic levels from an AC source is to apply the
rectified and filtered AC input to a high-input-voltage linear regulator. But, power dissipation in
the regulator can be considerable, even for modest load currents. A standard shunt regulator
also dissipates notable power in the limiting resistor. A switching regulator minimizes power
dissipation, but that type may not be practical for cost-sensitive designs.
As an alternative, consider an AC-coupled approach to reduce the power dissipation in linear or
shunt-regulator designs. To transfer energy to the regulator with negligible power loss, use a
coupling capacitor in conjunction with an IC containing a shunt regulator and power-on reset
(Figure 1). Available with 50mA maximum output-current capability in 3.0V, 3.3V, and 5.0V
shunt-voltage versions, IC1 also includes a power-on-reset (POR) function. Because IC1 is an
active shunt (vs. a passive zener diode) one must rectify the AC voltage before applying it.
Typically, a capacitor follows the rectifier to hold the charge during off cycles. As shown, a
simple half wave rectifier is used to save cost.
Figure 1. This SOT23 IC with low-cost external components provides a low-cost combination of
power-on reset and efficient logic display.
C1 is the transfer capacitor and C2 stores energy. D1 acts as a half-wave rectifier, and D2
discharges the transfer capacitor during negative cycles. R1 limits surge current during the
discharge of C1, and (if applicable) during high-voltage transient testing.
Several simplifications help to approximate the available output current. Assume zero forward
drops in the diodes, and a zero shunt voltage in the IC regulator. With (for example) a 60Hz
sinusoidal input of 24VRMS amplitude (Vpeak = 33.94V), you can then calculate as follows:
Peak current in C1 is
Ipeak(C1) = C1(dVs/dt) = C1[Vpeak(dsin( t)/dt)] = C1[ Vpeakcos( t)] =
C1 Vpeak.
Thus, with C1 = 3.0µF,
= 377.1 radians/sec, and Vpeak = 33.9V,
Ipeak = 38.4mA.
RMS charge current (Irms) in C1 is
Thus, for T = 16.7msec, Irms = 19.1mA.
By adjusting the value of C1 you can limit peak current levels to the level of maximum MAX6330
shunt current (50mA), while achieving an output of 20mA or so. The voltage rating of C1 should
be able to withstand the maximum input voltage.
Because peak currents are limited to Ipeak, practically any small-signal diode can serve as the
half-wave rectifier (D1). D2 discharges C1 during the negative portion of the cycle. The current
rating of D2 depends on the value of Vpeak and the selected value (50 ) of surge-limiting
resistor R1. The maximum reverse voltage at D1 and D2 is (Vshunt + Vdiode).
C2 acts as a storage capacitor that maintains load current during the negative portion of the
cycle. To calculate its value, use the following approximation based on the allowable level of
ripple voltage (Vripple):
C2 = (Iload T/2)/Vripple.
With Vripple = 150mV, T/2 = 8.3msec, and Iload = 10mA,
C2 = 550µF.
A similar version of this article appeared in the May 16, 2002 issue of EDN magazine.
DI473, July 2002
More Information
MAX6330: QuickView -- Full (PDF) Data Sheet -- Free Samples