Claims
- 1. A power control system for controlling power supplied from a power source to a resistive load to prevent said resistive load from exceeding a predetermined high temperature limit, wherein a regulator circuit is coupled between said power source and said resistive load for supplying controllable power levels to said resistive load, said power control system comprising:a pulse train generating circuit for converting power impulses received from said regulator circuit into a heating pulse train representing power flowing to said resistive load; a load temperature calculation circuit coupled to said pulse train generating circuit, wherein said load temperature calculation circuit includes digital logic for producing a temperature out value substantially representing a present temperature of said resistive load; and a temperature comparison circuit coupled to said load temperature calculation circuit and said regulator circuit, wherein said temperature comparison circuit selectively compares said temperature out value to at least one of a high temperature limit value and a base temperature value, wherein said temperature comparison circuit causes said power source to be disconnected from said resistive load when said temperature out value reaches said high temperature limit value, and wherein said temperature comparison circuit causes said power source to be reconnected to said resistive load when said temperature out value reaches said base temperature value.
- 2. The power control system of claim 1 wherein said pulse train generator circuit comprises:an AND gate receiving a power control pulse from said regulator circuit; and a heating rate oscillator coupled to said AND gate, wherein said oscillator and said power control pulse cause said AND gate to output said heating pulse train such that the number of pulses out of said AND gate is proportional to the total energy delivered to said resistive load.
- 3. The power control system of claim 1 wherein said pulse train generator circuit comprises:an AND gate receiving a power control pulse from said regulator circuit; a heating rate oscillator coupled to said AND gate; an accumulator coupled to said AND gate, for generating said heating pulse train.
- 4. The power control system of claim 1 wherein voltage is applied to said load across an inductor, and wherein said pulse train generator circuit adjusts the pulse rate according to said voltage across said inductor.
- 5. The power control system of claim 1 wherein said temperature calculation circuit comprises:an up/down counter coupled to said pulse train generator circuit, wherein said heating pulse train is applied to an up input of said up/down counter, and wherein said up/down counter outputs a temperature out value; a cooling rate oscillator; an accumulator coupled to said up/down counter and said cooling rate oscillator, wherein overflows from said accumulator generate a cooling pulse train, and wherein said cooling pulse train is applied to a down input of said up/down counter.
- 6. The power control system of claim 2 wherein said temperature calculation circuit comprises:an up/down counter coupled to said AND gate, wherein said heating pulse train is applied to an up input of said up/down counter, and wherein said up/down counter outputs a temperature out value; a cooling rate oscillator; an accumulator coupled to said up/down counter and to said cooling rate oscillator, wherein overflows from said accumulator a cooling pulse train, and wherein said cooling pulse train is applied to a down input of said up/down counter.
- 7. The power control system of claim 3 wherein said temperature calculation circuit comprises:an up/down counter coupled to said second AND gate, wherein said heating pulse train is applied to an up input of said up/down counter, wherein said up/down counter outputs a temperature out value; a cooling rate oscillator; an accumulator coupled to said up/down counter and to said cooling rate oscillator, wherein overflows from said accumulator generate a cooling pulse train, and wherein said cooling pulse train is applied to a down input of said up/down counter.
- 8. The power control system of claim 1 wherein said pulse train generating circuit comprises a voltage to frequency converter coupled to said regulator circuit, wherein a current sense voltage is applied to said voltage to frequency converter for producing said heating pulse train.
- 9. A power control system for controlling power supplied from a power source to a resistive load to prevent said resistive load from exceeding a predetermined high temperature limit, wherein a regulator circuit is coupled between said power source and said resistive load for supplying controllable power levels to said resistive load, said power control system comprising:a pulse rate generator circuit for generating heating and cooling pulse rates; an AND gate receiving said heating pulse rate from said pulse rate generator circuit and receiving a power control pulse from said regulator circuit, wherein said heating pulse rate and said power control pulse cause said AND gate to output a heating pulse train such that the number of pulses out of said AND gate is proportional to the total energy delivered to said resistive load; an up/down counter receiving said heating pulse train and coupled to said pulse rate generator circuit, wherein said heating pulse train is applied to an up input of said up/down counter, and wherein said up/down counter outputs a temperature out value substantially representing a present temperature of said resistive load; a rate multiplier coupled to said up/down counter and said pulse rate generator circuit, for generating a cooling pulse train, and wherein said cooling pulse train is applied to a down input of said up/down counter; and a temperature comparison circuit receiving said temperature out value and providing a power control signal to said regulator circuit, wherein said temperature comparison circuit selectively compares said temperature out value to at least one of a high temperature limit value and a base temperature value, wherein said temperature comparison circuit causes said power source to be disconnected from said resistive load when said temperature out value reaches said high temperature limit value, and wherein said temperature comparison circuit causes said power source to be reconnected to said resistive load when said temperature out value reaches said base temperature value.
- 10. The power control system of claim 9 wherein said pulse rate generating circuit includes a heating rate oscillator for generating said heating pulse rate and a cooling rate oscillator for generating said cooling pulse rate.
- 11. The power control system of claim 9 wherein said pulse rate generating circuit includes a single oscillator and a heating rate multiplier, for generating said heating pulse rate and a cooling rate multiplier for generating said cooling pulse rate.
- 12. The power control system of claim 9 further comprising a rate multiplier coupled between said AND gate and said up/down counter for adjusting said heating pulse train.
- 13. A power control system for controlling power supplied from a power source to a resistive load to prevent said resistive load from exceeding a predetermined high temperature limit, said power control system comprising:a regulator circuit for supplying controllable power levels from said power source to said resistive load; a pulse train generating circuit coupled to said regulator circuit for converting power impulses into a heating pulse train representing power flowing to said resistive load; a load temperature calculation circuit coupled to said pulse train generating circuit, wherein said load temperature calculation circuit includes digital logic for producing a temperature out value substantially representing a present temperature of said resistive load; and a temperature comparison circuit coupled to said load temperature calculation circuit and said regulator circuit, wherein said temperature comparison circuit selectively compares said temperature out value to at least one of a high temperature limit value and a base temperature value, wherein said temperature comparison circuit causes said power source to be disconnected from said resistive load when said temperature out value reaches said high temperature limit value, and wherein said temperature comparison circuit causes said power source to be reconnected to said resistive load when said temperature out value reaches said base temperature value.
- 14. The power control system of claim 13 wherein said regulator circuit comprises:a power inductor coupled to said resistive load; a switch for connecting said power source to said power inductor; a pulse width modulation switch controller for providing a power control pulse to control said switch; a current sensing resistor connected in series with said resistive load for registering a voltage proportional to a current in said resistive load; and an error amplifier for providing a feedback signal from said current sensing resistor to said pulse width modulation switch controller.
- 15. The power control system of claim 14 wherein said pulse train generating circuit comprises:an AND gate receiving a power control pulse from said pulse width modulation switch controller; and an oscillator coupled to said AND gate, wherein said oscillator and said power control pulse cause said AND gate to output said heating pulse train such that the number of pulses out of said AND gate is proportional to the total energy delivered to said resistive load.
- 16. The power control system of claim 14 wherein said pulse train generator circuit comprises:an AND gate receiving a power control pulse from said pulse width modulation switch controller; an oscillator; a heating rate multiplier coupled to said oscillator and to said AND gate; and a rate multiplier coupled to said AND gate and to a power input level, for generating said heating pulse train.
- 17. The power control system of claim 14 wherein said pulse train generator circuit adjusts the pulse rate according to voltage across said inductor.
- 18. The power control system of claim 14 wherein said temperature calculation circuit comprises:an up/down counter receiving said heating pulse train, wherein said heating pulse train is applied to an up input of said up/down counter, and wherein said up/down counter outputs a temperature out value; and a rate multiplier coupled to said up/down counter, for generating a cooling pulse train, wherein said cooling pulse train is applied to a down input of said up/down counter.
- 19. The power control system of claim 12 wherein said regulator circuit includes a voltage regulator, wherein said pulse train generating circuit includes a voltage to frequency converter, and wherein a current sense voltage signal is applied to said voltage to frequency converter.
- 20. A method of controlling power supplied from a power source to a resistive load to prevent said resistive from exceeding a predetermined high temperature limit, wherein a regulator circuit is coupled between said power source and said resistive load, said method comprising:generating a heating pulse train representing power flowing to said resistive load; modeling a load temperature using digital logic and said heating pulse train to generate a temperature out value substantially representing a present temperature of said resistive load; comparing said temperature out value to a high temperature limit value; disconnecting said power source from said resistive load if said temperature out value exceeds said high temperature limit value; comparing said temperature out value to a base temperature value; and re-connecting said power source to said resistive load if said temperature out value reaches said base temperature value.
- 21. The method of claim 20 wherein the step of generating said heating pulse train comprises applying a power control pulse to a pulse train generating circuit.
- 22. The method of claim 20 wherein the step of generating said heating pulse train comprises applying a current sense voltage to a voltage to frequency converter.
- 23. A system for controlling power supplied from a power source to a resistive load to prevent said resistive from exceeding a predetermined high temperature limit, wherein a regulator circuit is coupled between said power source and said resistive load, said system comprising:means for generating a heating pulse train representing power flowing to said resistive load; means for modeling a load temperature using digital logic and said heating pulse train to generate a temperature out value substantially representing a present temperature of said resistive load; means for comparing said temperature out value to at least one of a high temperature limit value and a base temperature value; and means for disconnecting said power source from said resistive load if said temperature out value exceeds said high temperature limit value and for re-connecting said power source to said resistive load if said temperature out value reaches said base temperature value.
CROSS-REFERENCE TO RELATED APPLICATIONS
This application is a continuation-in-part of patent application Ser. No. 09/512,575 filed on Feb. 24, 2000, now U.S. Pat. No. 6,349,023 which is fully incorporated herein by reference.
US Referenced Citations (8)
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09/512575 |
Feb 2000 |
US |
Child |
10/047949 |
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US |