Background of the Invention
Voltage regulators can be employed to reduce utility system peak loads by reducing the load voltage. Methods currently available for reducing peak loading range from manually adjusting the voltage regulator to sophisticated radio control techniques.
The inefficiency involved in manually adjusting voltage regulators to decrease load voltage and the economics involved with radio control devices make both systems infeasible when a plurality of voltage regulators are employed and extensive power transmission lines are involved.
The purpose of this invention is to provide apparatus and methods for automatically reducing utility system load voltage when the utility line current exceeds a predetermined set point.
Summary of the Invention
A line current transformer is connected with a utility transmission line to sense line current under varying load conditions. The sensed current is compared within a threshold detector circuit to determine when a fixed current set point is exceeded. The output of the detector circuit is connected to an auxiliary power supply and relay arrangement for changing the sensing voltage to the voltage regulator control thereby causing the voltage regulator output to decrease.
Brief Description of the Drawing
FIG. 1 is a schematic representation of the automatic voltage reduction control system according to the invention; and
FIG. 2 is a schematic representation of the automatic voltage reduction control circuit of FIG. 1 connected with a voltage regulator and with a utility transmission line.
Description of the Preferred Embodiment
U.S. Pat. Nos. 3,641,546 and 4,063,148 describe state-of-the-art voltage regulator circuits and are incorporated herein for purposes of reference. The automatic voltage reduction control circuit 10 of FIG. 1 is used with a voltage regulator, of the type described within the aforementioned patents, for the purpose of reducing the voltage output from the voltage regulator in the following manner. A current transformer 11 adapted to sense utility load current on a transmission line provides a signal to a rectifier and a filter to change the current signal to DC and remove any harmonic components. The DC current signal is applied to one input 14 of a first differential amplifier 15 by means of conductor 16 for comparison with a predetermined current signal which is applied to the other differential amplifier input 17. When the sensed DC current within first amplifier 15 exceeds the predetermined current value, an output signal appears on output 18 and is transmitted to a first relay 19 by means of conductor 20 to close the relay and cause a voltage from voltage source 21 to become transmitted by means of conductors 22 and 23 to the input of a voltage regulator control. The input voltage to the voltage regulator control immediately causes the voltage regulator to decrease the output voltage that appears across the load. For closer control over the voltage appearing across the load, the sensed current signal appearing at input 14 of first differential amplifier 15, is connected to input 24 of a second differential amplifier 25 by means of conductor 26. The sensed signal is compared to a predetermined current value applied to the other input 27 of second differential amplifier 25. The current signal applied to input 24 is compared to the predetermined current value set at input 27 and an output signal occurs at output 28 if the signal at input 24 exceeds the predetermined current value. The output signal of second differential amplifier 25 is in turn connected to a second relay 30 by means of connector 29 for switching a voltage between voltage source 21 and the input terminal of the voltage regulator control.
The interconnection between the voltage reduction circuit 10 of FIG. 1 and a voltage regulator 8 is shown in FIG. 2. The current sensing transformer 11 is magnetically coupled with a utility transmission line 6 which is connected between a source and a load as shown. Current transformer 11 is connected with a step-down transformer 9 by means of conductor 13 and the output of transformer 9 is connected to a filter network 12. The output of filter network 12 is connected to a first terminal 14 of first differential amplifier 15 by conductor 16, and to first terminal 24 of second differential amplifier 25 by means of conductor 26. Second terminal 17 of first differential amplifier 15 is connected to a current source for adjusting to a predetermined set current value. First differential amplifier 15 is connected at output 18 to first relay 19 by means of conductor 20, and output 28 of second differential amplifier 25 is connected to second relay 30 by means of conductor 29. Power supply 21 connected to the line voltage potential transformer within the circuit of voltage regulator 8 provides power through relays 19 and 30 by means of electrical connector 22. The output of relay 19 s connected to the secondary winding 33 of step-down transformer 34 by means of conductor 31 and the output of relay 30 is connected to the secondary of step-down transformer 34 by means of conductor 32. The output of step-down transformer 34 is connected to a level sensor 37 by means of conductors 35 and 36. The output of level sensor is connected by means of conductor 38 to a time delay 39. The output of time delay 39 is connected to motor drive relays 40 by means of conductor 41 which operates the motor drive mechanism within voltage regulator 8 by means of electrical conductor 42. The current sensed at line current transformer 11, therefore, operatively functions to provide a voltage increase to voltage regulator control 7 causing the output from voltage regulator 8 to decrease and, in turn, decrease the line load current.