Claims
- 1. In an apparatus for casting metals comprising:
- means for electromagnetically containing molten metal and for forming said molten metal into a desired shape, said electromagnetic containing and forming means including: an inductor for applying a magnetic field to said molten metal, said inductor in operation being spaced from said molten metal by a gap extending from the surface of said molten metal to the opposing surface of said inductor;
- means for applying an alternating current to said inductor to generate said magnetic field; and
- means for minimizing variations in said gap during operation of said casting apparatus, said gap variation minimizing means comprising control circuit means connected to said alternating current application means, said control circuit means including circuit means for sensing variations in said gap and means responsive to said gap variations sensing circuit means for controlling the magnitude of said current applied to said inductor so as to minimize said gap variation; the improvement wherein:
- said circuit means for sensing variations in said gap includes means for sensing the current and the voltage in said inductor and for providing signals corresponding thereto and means receiving said sensed current and voltage signals for determining an electrical parameter corresponding about to the inductance of said inductor, which varies with the magnitude of said gap.
- 2. An apparatus as in claim 1 wherein said means for controlling the magnitude of said current applied to said inductor is responsive to said means for determining said electrical parameter corresponding about to said inductance of said inductor.
- 3. In an apparatus for casting metal comprising: means for electromagnetically containing molten metal and for forming said molten metal into a desired shape, said electromagnetic containing and forming means including: an inductor for applying a magnetic field to said molten metal, said inductor in operation being spaced from said molten metal by a gap extending from the surface of said molten metal to the opposing surface of said inductor;
- means for applying an alternating current to said inductor to generate said magnetic field; and
- means for minimizing variations in said gap during operation of said casting apparatus, said gap variation minimizing means comprising control circuit means connected to said alternating current application means, said control circuit means including circuit means for sensing variations in said gap and means responsive to said gap variations sensing circuit means for controlling the magnitude of said current applied to said inductor so as to minimize said gap variation; the improvement wherein, said circuit means for sensing variations in said gap comprises:
- means for determining an electrical parameter corresponding about to the reactance or inductance of said inductor which varies with the magnitude of said gap;
- means responsive to said determining means for generating an error signal the magnitude of which is a function of the difference between the value of said electrical parameter corresponding about to the said reactance or inductance of said inductor and a predetermined value thereof;
- and wherein said means responsive to said gap variations sensing means comprises:
- means responsive to said error signal for controlling the current applied to said inductor so as to drive said error signal towards zero.
- 4. An apparatus as in claim 3 wherein said means for determining said electrical parameter of said inductor comprises means for sensing the voltage and current in said inductor and for providing signals corresponding thereto.
- 5. An apparatus as in claim 3 wherein said electrical parameter comprises the reactance of said inductor.
- 6. An apparatus as in claim 3 wherein said electrical parameter comprises the inductance of said inductor.
- 7. An apparatus as in claim 4 wherein said electrical parameter comprises reactance and wherein said means for determining said electrical parameter comprises phase sensitive means receiving said voltage signal for generating a phase sensitive voltage signal corresponding to the magnitude of the voltage 90.degree. out of phase to said current signal and means for dividing said phase sensitive voltage signal by said current signal for generating an output signal corresponding about to said reactance.
- 8. An apparatus as in claim 4 wherein said electrical parameter comprises inductance and wherein said means for determining said electrical parameter comprises phase sensitive means receiving said voltage signal for generating a phase sensitive voltage signal corresponding to the magnitude of the voltage 90.degree. out of phase to said current signal and first means for dividing said phase sensitive voltage signal by said current signal for generating an output signal corresponding about to the reactance of said inductor, means for sensing the frequency of the current in said inductor and for generating a signal corresponding thereto; and second means for dividing said reactance signal by said frequency signal to generate a signal corresponding about to said inductance of said inductor.
- 9. An apparatus as in claim 7 further including means for extracting the fundamental frequency of said voltage and current signals prior to said signals being received by said first dividing means.
- 10. An apparatus as in claim 8 further including means for extracting the fundamental frequency of said voltage and current signals prior to said signals being received by said first dividing means.
- 11. An apparatus as in claim 9 wherein said fundamental frequency extracting means comprises a phase-locked loop circuit means.
- 12. An apparatus as in claim 10 wherein said fundamental frequency extracting means comprises a phase-locked loop circuit means.
- 13. An apparatus as in claim 4 wherein said means for determining said electrical parameter further includes means for generating a 0.degree. phase reference signal and an 90.degree. phase reference signal; first phase sensitive voltage rectifier means, receiving said 0.degree. phase reference signal and said current signal for generating a voltage signal corresponding to said current in said inductor; and second phase sensitive voltage rectifier means, receiving said voltage signal and said 90.degree. phase reference signal for generating a phase sensitive voltage signal corresponding to the voltage in said inductor 90.degree. out of phase to the current.
- 14. An apparatus as in claim 13 wherein said means for generating said reference signals comprises a phase-locked loop circuit means which is also operative in conjunction with said first and second phase sensitive voltage rectifier means for extracting the fundamental frequency of said voltage and current signals.
- 15. An apparatus as in claim 14 wherein means are provided for converting said current signal from a current to a properly scaled voltage to provide a current signal in voltage form for application to said phase-locked loop circuit and said first phase sensitive voltage rectifier means.
- 16. An apparatus as in claim 14 further including first voltage divider means for receiving said voltage signal corresponding to said current in said inductor and said phase sensitive voltage signal from said first and second phase sensitive voltage rectifier means for dividing said phase sensitive voltage signal by said voltage signal corresponding to said current to provide an output signal corresponding about to the reactance of said inductor.
- 17. An apparatus as in claim 16 further including means for sensing the frequency of the current applied to said inductor and for generating a signal corresponding thereto and second voltage divider means for receiving the reactance signal from said first voltage divider means and said frequency signal for dividing said reactance signal by said frequency signal to generate a signal corresponding about to the inductance of said inductor.
- 18. An apparatus as in claim 16 wherein said means for generating said error signal comprises a variable voltage source for generating a desired predetermined voltage signal and differential amplifier means receiving said reactance signal from said first voltage divider means and said predetermined voltage signal from said variable voltage source for generating said error signal.
- 19. An apparatus as in claim 17 wherein said means for generating said error signal comprises a variable voltage source for generating a desired predetermined voltage signal and differential amplifier means receiving said inductance signal from said second voltage divider means and said voltage signal from said variable voltage source for generating said error signal.
- 20. An apparatus as in claim 4 wherein said means for determining said electrical parameter and said means for generating said error signal comprise computer means for calculating said electrical parameter of said inductor and for comparing said calculated electrical parameter to a preprogrammed value thereof and for generating a preprogrammed error signal in response to the difference between said calculated value of said electrical parameter and said preprogrammed value thereof.
- 21. An apparatus as in claim 20 wherein said electrical parameter comprises the reactance of said inductor.
- 22. An apparatus as in claim 20 wherein said electrical parameter comprises the inductance of said inductor.
- 23. In an apparatus for casting metals comprising:
- means for electromagnetically containing molten metal and for forming said molten metal into a desired shape, said electromagnetic containing and forming means including: an inductor for applying a magnetic field to said molten metal, said inductor, in operation, being spaced from said molten metal by a gap extending from the surface of said molten metal to the opposing surface of said inductor; and
- means for applying an alternating current to said inductor to generate said magnetic field; the improvement wherein said apparatus further includes:
- means for sensing the magnitude of said gap, said gap sensing means comprising means for determining an electrical parameter corresponding about to the inductance of said inductor;
- means responsive to said gap magnitude sensing means for generating an error signal the magnitude of which is a function of the difference between said sensed gap magnitude and a predetermined gap magnitude; and
- means responsive to said error signal for controlling the current applied to said inductor so as to return said gap to said predetermined magnitude.
- 24. An apparatus as in claim 23 wherein said means for sensing the magnitude of said gap comprises means for sensing the voltage and current in said inductor and for providing signals corresponding thereto.
- 25. An apparatus as in claim 24 wherein said means for sensing the magnitude of said gap further includes means for converting at least one or both of said current and voltage signals into signals corresponding to the frequency of said current in said inductor, the RMS voltage, the RMS current and the true power applied to said inductor and computer means receiving said frequency, RMS voltage, RMS current and true power signals for calculating an electrical parameter of said inductor which varies with the magnitude of said gap.
- 26. An apparatus as in claim 24 wherein said means for sensing the magnitude of said gap includes:
- computer means for calculating the inductance of said inductor and the magnitude of said gap; and
- wherein said means for generating said error signal includes said computer means for comparing said calculated gap magnitude to a preprogrammed gap magnitude and for generating a preprogrammed error signal in response to the difference between said calculated gap magnitude and the preprogrammed gap magnitude.
- 27. An apparatus as in claim 25 wherein said converting means comprises a frequency to voltage converter means for providing said frequency signal and AC power meter means for providing said RMS voltage, RMS current and true power signals and said sensing means further including means for converting the outputs of said frequency to voltage converter means and said AC power meter means from analog to digital form and for applying the respective digital output signals to said computer means.
- 28. An apparatus as in claim 27 wherein said computer means generates said error signal and further including digital to analog converter means receiving said error signal for providing an analog error signal for application to said control means.
- 29. An apparatus as in claim 28 further including filter means receiving said sensed voltage and current signals for extracting the fundamental frequency thereof prior to said signals being applied to said frequency to voltage conversion means and said AC power meter means.
Parent Case Info
This is a division of application Ser. No. 905,889, filed May 15, 1978, now U.S. Pat. No. 4,161,206.
US Referenced Citations (4)
Foreign Referenced Citations (3)
Number |
Date |
Country |
273226 |
Jun 1970 |
SUX |
502702 |
Feb 1976 |
SUX |
537750 |
Mar 1977 |
SUX |
Divisions (1)
|
Number |
Date |
Country |
Parent |
905889 |
May 1978 |
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