Claims
- 1. A method of operating an inductive distance sensor for measurement of a load, the sensor comprising a vane, a first coil and a second coil which is connected electrically in series with the first coil and is spaced apart from the first coil, said vane being movable between said first and said second coils to change its relative distance from the coils and thus the magnitudes of their inductances L.sub.1 and L.sub.2, a position of said vane between the coils being under the influence of a measurement variable, the method comprising the steps of:
- applying a first sinusoidal voltage U.sub.e1 to said first coil and a second sinusoidal voltage U.sub.e2 to said second coil, said sinusoidal voltages being of equal amplitude and opposite phase;
- tapping off from a terminal connected between the coils an output signal having a voltage U.sub.S with respect to zero potential;
- determining U.sub.eR and U.sub.eL of (U.sub.e =U.sub.e1 +U.sub.e2) with respect to magnitude and phase;
- measuring a vectorial part U.sub.sL of U.sub.S which is in phase with U.sub.eL ; and
- multiplying the value of U.sub.sL by a ratio U.sub.e /U.sub.eL for obtaining a measurement of the load.
- 2. A method of operating an inductive distance sensor for measurement of a load, the sensor comprising a vane, a first coil and a second coil which is connected electrically in series with the first coil and is spaced apart from the first coil, said vane being movable between said first and said second coils to change its relative distance from the coils and thus the magnitudes of their inductances L.sub.1 and L.sub.2, a position of said vane between the coils being under the influence of a measurement variable, the method comprising the steps of:
- applying a first sinusoidal voltage U.sub.e1 to said first coil and a second sinusoidal voltage U.sub.e2 to said second coil, said sinusoidal voltages being of equal amplitude and opposite phase;
- tapping off from a terminal connected between the coils an output signal having a voltage U.sub.S with respect to zero potential;
- employing a reference sensor consisting of an ohmic precision resistance divider, and applying thereto the sinusoidal voltages U.sub.e1 +U.sub.e2 =U.sub.e of which there is a middle-point voltage U.sub.M with respect to zero potential;
- measuring the middle point voltage U.sub.M ;
- establishing a voltage portion U.sub.MR which is identical in polarity to U.sub.e1 and of the same phase as U.sub.e ;
- establishing a voltage portion U.sub.ML of U.sub.M which is shifted in phase by 90.degree. to U.sub.MR, wherein U.sub.MR is the real part of U.sub.M, and U.sub.ML is the imaginary part of U.sub.M ;
- storing values of the voltages U.sub.MR and U.sub.ML ;
- applying a voltage U.sub.e equal to the sum of U.sub.e1 and U.sub.e2 to the inductive distance sensor and determining the voltages U.sub.e, U.sub.eR and U.sub.eL as well as the corresponding phase angle .alpha. of U.sub.e ;
- measuring the voltage portion U.sub.sL of U.sub.s which is in the same phase as U.sub.eL ; and
- correcting U.sub.sL by subtraction of .DELTA.U.sub.sL which equals U.sub.MR .times.sin .alpha.+U.sub.ML .times.cos .alpha. to obtain a measurement of the load.
- 3. Method according to claim 2, further comprising a step of
- utilizing crossings through zero of the current I.sub.e in said coils resulting from impressing the voltage U.sub.e across the serial connection of said coils for a determination of the real part U.sub.eR and of the imaginary part U.sub.eL shifted 90.degree. in phase to the real part.
- 4. Method according to claim 1, further comprising a step of
- utilizing crossings through zero of the current I.sub.e in said coils resulting from impressing the voltage U.sub.e across the serial connection of said coils for a determination of the real part U.sub.eR and of the imaginary part U.sub.eL shifted 90.degree. in phase to the real part.
- 5. Method according to claim 1, further comprising a step of
- utilizing zero crossings of U.sub.e to establish a portion of current of the same phase as U.sub.s and a portion shifted 90.degree. in phase from the phase of U.sub.s, and to determine from the current portions the angle .alpha. of U.sub.e the phase shift between U.sub.e and I.sub.e for the determination of U.sub.eR and U.sub.eL.
- 6. Method according to claim 2, further comprising a step of
- utilizing zero crossings of U.sub.e to establish a portion of current of the same phase as U.sub.s and a portion shifted 90.degree. in phase from the phase of U.sub.s, and to determine from the current portions the angle .alpha. of U.sub.e the phase shift between U.sub.e and I.sub.e for the determination of U.sub.eR and U.sub.eL.
- 7. Method according to claim 2, further comprising a step, in order to determine U.sub.eR and U.sub.eL, of
- measuring phase shift of zero crossings between U.sub.e and I.sub.e over a time interval .DELTA.t and phase angle .alpha. of U.sub.e, wherein I.sub.e is current flowing through the series connection of said coils in response to impressing the voltage U.sub.e across said coils.
- 8. Method according to claim 1, further comprising a step, in order to determine U.sub.eR and U.sub.eL, of
- measuring phase shift of zero crossings between U.sub.e and I.sub.e over a time interval .DELTA.t and phase angle .alpha. of U.sub.e, wherein I.sub.e is current flowing through the series connection of said coils in response to impressing the voltage U.sub.e across said coils.
- 9. Method according to claim 1, further comprising a step of
- compensating for the influences of temperature-dependent mechanical variables on the result of the measurement, by employing the ratio (U.sub.eL /U.sub.e).sub.x measured at a temperature t.sub.x, and comparing the ratio with a ratio (U.sub.eL /U.sub.e).sub.o measured at a reference temperature t.sub.o for employing a difference between the two ratios.
- 10. Method according to claim 2, further comprising a step of
- compensating for the influences of temperature-dependent mechanical variables on the result of the measurement, by employing the ratio (U.sub.eL /U.sub.e).sub.x measured at a temperature t.sub.x, and comparing the ratio with a ratio (U.sub.eL /U.sub.e).sub.o measured at a reference temperature t.sub.o for employing a difference between the two ratios.
- 11. Method according to claim 2, further comprising a step of
- establishing a further tap H of the reference sensor;
- measuring a voltage U.sub.H with respect to zero potential;
- extracting and a portion U.sub.HR of U.sub.H having the same phase as U.sub.e ;
- subtracting U.sub.MR from U.sub.HR, and comparing a resulting difference with a constant reference voltage U.sub.K present as a numerical value; and
- forming a factor U.sub.K /(U.sub.HR -U.sub.MR), which then serves for a standardizing of (U.sub.sL -.DELTA.U.sub.sL) wherein .DELTA.U.sub.sL is a deviation of U.sub.SL.
- 12. Method according to claim 2, further comprising a step of
- connecting a switch between said first coil and a source of voltage, and operating said switch alternately to connect said first coil and a reference sensor alternately to said voltage source, said step of employing a reference sensor being accomplished by operation of said switch.
- 13. A method according to claim 12, further comprising a step of
- utilizing zero crossings of U.sub.e to establish a portion of current of the same phase as U.sub.s and a portion shifted 90.degree. in phase from the phase of U.sub.s, and to determine from the current portions the angle .alpha. of U.sub.e the phase shift between U.sub.e and I.sub.e for the determination of U.sub.eR and U.sub.eL,
- wherein said step of utilizing zero crossings to establish a portion shifted 90.degree. in phase as accomplished by connecting a phase shifter and a zero crossing detector to a signal line of said first coil to provide a phase reference for comparing with a signal at an output terminal of said switch.
Priority Claims (2)
Number |
Date |
Country |
Kind |
4102655 |
Jan 1991 |
DEX |
|
4102657 |
Jan 1991 |
DEX |
|
RELATED APPLICATION
This application is a continuation-in-part application of my copending application Ser. No. 07/828,449 filed Jan. 30, 1992 now abandoned.
US Referenced Citations (14)
Foreign Referenced Citations (4)
Number |
Date |
Country |
3345534 |
Jun 1985 |
DEX |
0224970 |
Jul 1985 |
DEX |
3576036 |
Nov 1986 |
DEX |
3814131 |
Nov 1989 |
DEX |
Non-Patent Literature Citations (1)
Entry |
Patent Abstracts of Japan, vol. 8, No. 68 (P-264) (1505) Mar. 30, 1984 and JP-A-58214825 Dec. 14, 1983. |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
828449 |
Jan 1992 |
|