Claims
- 1. A circuit for regulating the voltage across a load connected to an ac power source, the circuit comprising:a switching means connected in series with the load, the ac power source connected between the series combination of the switching means and the load; a control means for controlling the phase angle at which the switching means permits application of the voltage from the ac power source across the load; a transformer, the primary of the transformer connected across the load, the ac voltage across the secondary of the transformer being proportional to the voltage across the load; a rectifier means for converting the ac voltage across the secondary of the transformer into a dc rectified voltage; a root mean square filter, the dc rectified voltage connected to the input of the root mean square filter to produce a dc filter output voltage proportional to the ac root mean square voltage across the load; a means for providing a setpoint voltage for the ac root mean square voltage across the load; and a means for comparing the setpoint voltage with the dc filter output voltage, whereby if the setpoint voltage is greater than the dc filter output voltage the control means adjusts the phase angle at which the switching means permits application of the voltage from the ac power source across the load to increase the effective voltage applied to the load from the ac power source, and if the setpoint signal is less than the dc filter output voltage the control means adjusts the phase angle at which the switching means permits application of the voltage from the ac power source across the load to decrease the effective voltage applied to the load from the ac power source, to regulate the voltage across the load as the voltage of the ac power source varies.
- 2. The circuit of claim 1 wherein the switching means comprises a triac.
- 3. The circuit of claim 1 wherein the root mean square filter comprises:a first filter resistor, the first terminal of the first filter resistor connected to the dc rectified voltage; a second filter resistor, the first terminal of the second filter resistor connected to the second terminal of the first filter resistor; a third filter resistor, the first terminal of the third filter resistor connected to the second terminal of the second filter resistor; a filter capacitor, the first terminal of the filter capacitor connected in common with the second terminal of the first filter resistor and the first terminal of the second filter resistor, the second terminal of the filter capacitor connected in common with the second terminal of the third filter resistor, whereby the first and second filter resistors form a voltage divider with the third filter resistor to produce the dc filter output voltage at the common connection of the second terminal of the second filter resistor and the first terminal of the third filter resistor.
- 4. The circuit of claim 3 wherein the ac power source operates at 60 Hertz; the resistance of the first filter resistor is approximately equal to one third of the sum of the resistances of the second and third filter resistors; and the impedance of the filter capacitor at 60 Hertz is approximately equal to one-tenth of the resistance of the first filter resistor.
- 5. The circuit of claim 1 wherein the root mean square filter comprises a monolithic device.
- 6. The circuit of claim 1 further comprising a means for visually displaying the instantaneous effective voltage applied to the load whereby adjustment of the setpoint voltage is accomplished with reference to the instantaneous voltage applied to the load.
- 7. The circuit of claim 6 wherein the output of the dc filter output voltage provides the input to the means for visually displaying the instantaneous effective voltage applied to the load.
- 8. A voltage regulator comprising:a load having a first load connection and a second load connection; a triac having a first triac connection and a second triac connection, the first triac connection connected to the firs load connection; an ac power source having a first output terminal and a second output terminal, the first output terminal connected to the second load terminal and the second output terminal connected to the second triac terminal whereby the ac power sources is connected across the series combination of the triac and the load; a triac control circuit to provide a turn-on voltage to the gate of the triac at a selectable phase angle; a full-wave rectifier having an ac rectifier input across the load and a dc rectified output voltage; a root mean square voltage filter, the dc rectified output voltage connected to the input of the root mean square filter to produce a dc filter output voltage approximately proportional to the ac root mean square voltage across the load; a setpoint potentiometer having its end terminals connected across a dc reference voltage source, the wiper terminal of the setpoint potentiometer adjusted to a dc setpoint voltage; and a comparator for comparing the dc setpoint voltage to the dc filter output voltage, the output of the comparator inputting a signal to the triac control circuit to increase the phase angle for the turn-on voltage if the dc setpoint voltage is greater than the dc filter output voltage, and to decrease the phase angle for the turn-on voltage if the dc setpoint voltage is less than the dc filter output voltage to regulate the voltage across the load as the voltage of the ac power source varies.
- 9. The circuit of claim 8 wherein the root mean square voltage filter comprises:a first filter resistor, the first terminal of the first filter resistor connected to the dc rectified output voltage; a second filter resistor, the first terminal of the second filter resistor connected to the second terminal of the first filter resistor; a third filter resistor, the first terminal of the third filter resistor connected to the second terminal of the second filter resistor; a filter capacitor, the first terminal of the filter capacitor connected in common with the second terminal of the first filter resistor and the first terminal of the second filter resistor, the second terminal of the filter capacitor connected in common with the second terminal of the third filter resistor, whereby the first and second filter resistors form a voltage divider with the third filter resistor to produce the dc filter output signal at the common connection of the second terminal of the second filter resistor and the first terminal of the third filter resistor.
- 10. The circuit of claim 9 wherein the ac power source operates at 60 Hertz, the resistance of first filter resistance is approximately equal to one third of the sum of the resistances of the second and third filter resistors, and the impedance of the filter capacitor at 60 Hertz is approximately equal to one-tenth of the resistance of the first filter resistor.
- 11. The circuit of claim 8 wherein the root mean square filter comprises a monolithic device.
- 12. The circuit of claim 8 further comprising a digital voltmeter for displaying the instantaneous effective voltage applied to the load, the voltmeter having an input signal from the dc filter output voltage whereby adjustment of the setpoint voltage is accomplished with reference to the instantaneous effective voltage applied to the load.
- 13. The circuit of claim 8 further comprising a sensor means for selectively preventing the application of voltage to the load from the ac power source by inhibiting a triac turn-on voltage.
- 14. A method of regulating the ac root mean square voltage across a load, the method comprising the steps of:providing a switching device in series with the load; connecting an ac power source across the series combination of the switching device and the load; sensing the ac root mean square voltage across the load; converting the sensed ac root mean square load voltage into a proportional dc voltage; generating a dc voltage proportional to the ac root means square load voltage; comparing the generated dc voltage to a dc setpoint voltage; and adjusting the phase angle turn-on the switching device when the dc setpoint voltage is not equal to the dc voltage proportional to the ac root means square load voltage to maintain an approximately constant ac root mean square voltage across the load when variations in the voltage of the power source occur.
CROSS REFERENCE TO RELATED APPLICATIONS
This application claims the benefit of U.S. Provisional Application No. 60/403,958, filed Aug. 16, 2002.
US Referenced Citations (4)
Provisional Applications (1)
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Number |
Date |
Country |
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60/403958 |
Aug 2002 |
US |