EP0136627A2

Resonator transducer system with temperature compensation.

Abstract

A method and apparatus for measuring force or other parameters and temperature. The apparatus includes an oscillator and a vibratory element, such as a quartz crystal, which is caused to resonate by the oscillator at two frequencies f1 and f2 selected from the fundamental frequency and its overtone frequencies of the vibratory element. The vibratory element is selected so that the two frequencies f1 and f2 both vary with variation in force (or other parameter) applied to the element and with variation in temperature of the element, and so that the magnitude or scale factor of variation for frequency f, is different from that for frequency f2. The apparatus also includes a detection device for detecting the frequencies f, and f2 and for producing signals representing the frequency variation of the two frequencies relative to a reference frequency, and a processor for processing the signals produced by the detector device for determining the force (or other parameter) and temperature to which the vibratory element is subjected.

EP0136627A2, drawing sheet 1
Sheet 1 of 14

Term

Term ended

Projected expiry passed 20 September 2004, 22 years ago.

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34 claims: 4 independent, 30 dependent

  1. 1
    A resonator transducer system comprising a vibratory element which is responsive to an oscillatory electrical signal for resonating at frequencies f 1 and f 2' selected from the fundamental frequency and overtone frequencies of the vibratory element, where the two frequencies vary with variation in force or other parameter applied to the vibratory element and with variation in temperature to which the vibratory element is exposed, with the magnitude of variation due to the change in temperature for frequency f 1 being different from that for frequency f 2 , means for applying an oscillatory signal to the vibratory element to cause the vibratory element to resonate and for producing a vibratory signal having a frequency f 1 and a frequency f 2 which follow the selected frequencies f l and f 2 respectively of the vibratory element, and processing means responsive to the frequencies f l and f 2 of the vibratory signal produced by the oscillator means for producing a first signal representing the force or other parameter applied to the vibratory element, and a second signal representing the temperature to which the vibratory element is subjected.
  2. 16
    A resonator transducer system comprising a vibratory element which is responsive to an oscillatory electrical signal for resonating at frequencies f I and f 2 , selected from the fundamental frequency and overtone frequencies of the vibratory element, where the two frequencies vary with variation in force applied to the vibratory element and with variation in temperature to which the vibratory element is exposed, with the magnitude of variation due to the change in force for frequency f 1 being different from that for frequency f 2 means for applying an oscillatory signal to the vibratory element to cause the vibratory element to resonate and for producing a vibratory signal having a frequency f 1 and a frequency f 2 which follow the selected frequencies f 1 and f 2 respectively of the vibratory element, and processing means responsive to the frequencies f 1 and f 2 of the vibratory signal produced by the oscillator means for producing a first signal representing the force applied to the vibratory element and a second signal representing the temperature to which the vibratory element is subjected.
  3. 18
    A resonator force transducer system with temperature self-compensation comprising a vibratory element which resonates at a first selected frequency f 1 and a second selected frequency f 2 in response to an oscillatory electrical signal, said frequencies varying by different scale factors with variation in force applied to the vibratory element and variation in temperature to which the vibratory element is exposed, means for causing said vibratory element to resonate at the frequencies f 1 and f 2 , means for detecting the frequency f 1 and frequency f 2 of resonance of the vibratory element and for producing a signal s 1 = f 1 - f ol, and a signal s 2 = f 2 - f 02, where f 01 is the first selected frequency of vibration of the vibratory element at a predetermined reference force F O and reference temperature T 0 , and where f 02 is the second selected frequency of vibration of the vibratory element at the reference force and temperature, and processing means responsive to signals s 1 and s 2 for producing a signal F representing the change in force applied to the vibratory element from the reference force, corrected for temperature variations.
  4. 30
    A method of determining force or other parameter and temperature comprising causing a vibratory element to resonate at frequencies f l and f 2' with the frequencies being selected from the group of frequencies consisting of the fundamental and overtone frequencies of the vibratory element, where the two frequencies vary with variation in force or other parameter applied to the vibratory element and with variation in temperature to which the vibratory element is exposed, with the magnitude of variation of frequency f 1 due to the change in force or other parameter or the change in temperature being different from that for frequency f 2 , producing a vibratory signal having frequencies f l and f 2 which follow the frequencies of resonance of the vibratory element, and processing the vibratory signal to produce a first signal representing the force or other parameter applied to the vibratory element, a second signal representing the temperature to which the vibratory element is subjected.