Claims
- 1. A self-powered, current-loop controller for controlling a process variable, said controller comprisinga first light-emitting diode for indicating the presence of and controlling direction of electric current flow in said controller; a first zener diode for regulating voltage levels of said current; a pair of transistors, each for controlling current flow between an on position and an off position, and for controlling on-off signal outputs; at least one resistor for converting said current into a first voltage signal; a second zener diode for regulating a set point voltage signal; a first voltage comparator for comparing said first voltage signal to said set point voltage signal, and for controlling operation of said transistors such that when said first voltage signal exceeds said set point voltage, said first voltage comparator turns one of said transistors to said off position thereby causing said current to flow through an associated LED for visual indication and through an associated opto-isolator for controlling said process variable; a third zener diode for compensating for voltage drop across one of said transistors; and voltage shifting means for shifting voltage level at the base of said transistors to a level at which said transistors are operable.
- 2. A controller according to claim 1, whereinsaid voltage shifting means comprise a pair of resistors and a zener diode connected in series with respect to each other, and in parallel at the base input of the transistor so as to compensate for the level shifting of the transistor's collector and emitter voltages when they are turned on or off.
- 3. A self-powered, current-loop controller for controlling a process variable, said controller comprisingcurrent-direction control means for controlling direction of electric current flow in said controller; voltage regulating means for regulating voltage levels of said current; current-flow control means for controlling current flow between an on position and an off position; current-conversion means for converting said current into a first voltage signal; voltage reference means for determining a set point voltage signal; first voltage comparing means for comparing said first voltage signal to said set point voltage signal, and for controlling operation of said current-flow control means such that when said first voltage signal exceeds said set point voltage, said current-flow control means causes said current to flow through an associated LED for visual indication and through an associated opto-isolator for controlling said process variable; voltage compensation means compensating for voltage drop across one of said transistors; and voltage shifting means for shifting voltage level at the base of said transistors to a level at which said transistors are operable.
- 4. A controller according to claim 3, whereinsaid voltage shifting means comprise a pair of resistors and a zener diode connected in series with respect to each other, and in parallel at the base input of the transistor so as to compensate for the level shifting of the transistor's collector and emitter voltages when they are turned on or off.
- 5. A method of controlling a process variable in a self-powered current loop, said method comprisingapplying electric current to a circuit; directing said current to a first LED thereby causing it to turn on; directing said current to first and second transistors thereby causing them to turn on, whereby said transistors allow current to flow through a first zener diode and a first resistor and out to a current loop closing the circuit; regulating voltage extracted from the current to power a second diode, a first comparator, and an opto-isolator; determining if a signal variable representative of said process variable monitored by the first resistor drops below a set point value of the first comparator, whereby the first comparator switches its output to a high (VCC) level turning the first transistor off and allowing the current to flow through the opto-isolator's internal LED and said second transistor so that the opto-isolator's internal LED turns on its phototransistor causing its collector and emitter terminals to have a very low resistance energizing an external device for controlling said process variable; and determining if said signal variable exceeds the set point value of the first comparator, whereby the first comparator switches to low (ground) turning on the first transistor which turns off the opto-isolator's internal LED and phototransistor.
PRIORITY DOCUMENTS
This application corresponds to and derives priority from U.S. Provisional Application Ser. No. 60/100,648, filed Sep. 16, 1998
US Referenced Citations (6)
Provisional Applications (1)
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Number |
Date |
Country |
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60/100648 |
Sep 1998 |
US |