Claims
- 1. A circuit arrangement for activating a sensor and evaluating its signals, comprising
at least one sensor for acquiring mechanical data, and a circuit member for simultaneously acquiring a measuring signal, an absolute temperature, and a gradient temperature of the sensor.
- 2. The circuit arrangement of claim 1 wherein the at least one sensor comprises a parametric sensor with complex impedances, and wherein the circuit member includes a microprocessor or microcomputer.
- 3. The circuit arrangement of claim 2 wherein the microprocessor or microcomputer is configured to simultaneously compensate the dependency of the measuring signal on the absolute temperature and the gradient temperature.
- 4. The circuit arrangement of claim 1, wherein the at least one sensor comprises at least one impedance.
- 5. The circuit arrangement of claim 4, wherein the temperature dependent changes of the impedance are acquired by means of the complex and/or the ohmic input resistance of the sensor.
- 6. The circuit arrangement of claim 2, wherein at least two voltages are generated by means of a source of voltage and/or at least one switch and are applied to a sensor driver which is connected to said at least one sensor.
- 7. The circuit arrangement of claim 6, wherein the switch is a controllable analogous switch which is directly activatable from the microprocessor or microcomputer by means of a signal.
- 8. The circuit arrangement of claim 7, wherein the signal is a unipolar square-wave signal.
- 9. The circuit arrangement of claim 6, wherein the at least two voltages comprise two unipolar ac voltages and one dc voltage.
- 10. The circuit arrangement of claim 9, wherein the amplitude of the ac voltages is twice the amplitude of the dc voltage.
- 11. The circuit arrangement of claim 9, wherein the two unipolar ac voltages are symmetric and/or complementary to the dc voltage.
- 12. The circuit arrangement of claim 9, wherein one unipolar ac voltage is smaller than the dc voltage and/or the other unipolar ac voltage is greater than the dc voltage.
- 13. The circuit arrangement of claim 6, wherein the sensor driver comprises high-ohmic input resistors.
- 14. The circuit arrangement of claim 2, wherein the output signal of the sensor is supplied to a controllable synchronous converter.
- 15. The circuit arrangement of claim 14, wherein the synchronous converter is directly activated by the microprocessor or microcomputer.
- 16. The circuit arrangement of claim 15, wherein the output signal of the synchronous converter is amplified by means of a programmable amplifier.
- 17. The circuit arrangement of claim 13, wherein the drop of the ac and/or the dc voltage on the resistors of the sensor driver is measured by means of a temperature measuring circuit.
- 18. The circuit arrangement of claim 17, wherein a signal proportional to the absolute temperature is measured by means of the ac and/or the dc voltage drop.
- 19. The circuit arrangement of claim 17, wherein the output signal of the synchronous converter and/or the output signal of the temperature measuring circuit is digitized and/or digitally demodulated by means of a multiplexer and/or an A/D converter.
- 20. The circuit arrangement of claim 19, wherein the multiplexer is activatable by means of the microprocessor or microcomputer.
- 21. The circuit arrangement of claim 20, wherein the output signal of the A/D converter is supplied to the microprocessor or microcomputer.
- 22. The circuit arrangement of claim 19, wherein a compensated distance signal is computed by the microprocessor or microcomputer by means of the demodulated output signal of the synchronous converter and/or the demodulated output signal of the temperature measuring circuit and/or the absolute temperature and/or the gradient temperature.
- 23. The circuit arrangement of claim 22, wherein the compensated distance signal is output as an analogous signal, a pulse-width modulated signal by means of a D/A converter, or for further processing by means of a digital interface.
- 24. A method of activating sensors and evaluating their signals, comprising the steps of
operating a circuit arrangement which comprises at least one sensor for acquiring mechanical data, and a circuit member for simultaneously acquiring a measuring signal, an absolute temperature, and a gradient temperature of the sensor, and wherein
the measuring signal, the absolute temperature, and the gradient temperature of the sensor are simultaneously acquired by means of a microprocessor or microcomputer.
- 25. The method of claim 24, wherein the dependence of the measuring signal on the absolute temperature and the gradient temperature, is simultaneously compensated, by means of the microprocessor or microcomputer.
- 26. The method of claim 25, wherein the microprocessor or microcomputer computes from signals (A, B) which are digitized by means of an A/D converter, the difference (A−B) and the change of the average ((A+B)/2).
- 27. The method of claim 26, wherein the change of the average ((A+B)/2) is proportional to the gradient temperature.
- 28. The method of claim 25, wherein a correction factor k2(T) is computed by means of the output signal of a temperature measuring circuit, with the output signal being proportional to the absolute temperature.
- 29. The method of claim 28, wherein a second correction factor k1 is stored in the microprocessor or microcomputer, and wherein
the second correction factor k1 represents the type of sensor.
- 30. The method of claim 29, wherein the microprocessor or microcomputer computes an output signal (uout) by means of an algorithm which comprises
Priority Claims (2)
Number |
Date |
Country |
Kind |
100 41 321.8 |
Aug 2000 |
DE |
|
101 23 303.5 |
May 2001 |
DE |
|
CROSS REFERENCE TO RELATED APPLICATION
[0001] This is a continuation of copending international application No. PCT/DE01/03032, filed Aug. 8, 2001 and designating the U.S.
Continuations (1)
|
Number |
Date |
Country |
Parent |
PCT/DE01/03032 |
Aug 2001 |
US |
Child |
10322067 |
Dec 2002 |
US |