Claims
- 1. A method for measuring the torque to which a torque-bearing member is subjected, which torque results in a strain along at least a portion of the length of said torque-bearing member, said method comprising the steps of:
affixing to said portion of said length of said torque-bearing member a piezoelectric transducer which includes electrodes across which at least one of a voltage and a charge is generated in response to strain; coupling a signal responsive to said voltage to signal-measuring instrument, for producing an indication of the magnitude of said signal and consequently of the magnitude of said torque.
- 2. A method according to claim 1, wherein said coupling step includes the step of coupling said one of said voltage and said charge to said instrument by way of a capacitive device.
- 3. A method according to claim 1, wherein said coupling step includes the step of coupling said one of said voltage and said charge to said instrument by way of an antenna.
- 4. A method according to claim 2, further comprising the steps of:
rotating said torque-bearing member relative to an underlying structure, and wherein said step of coupling said voltage by way of a capacitive device comprises the step of coupling said voltage by way of (a) a generally annular first electrode coupled to an electrode of said piezoelectric transducer, which first electrode rotates in consonance with said torque-bearing member and (b) a generally annular second electrode concentric with said first circular electrode, which second electrode is spaced away from said first electrode by a gap, and is affixed to said underlying structure.
- 5. A method according to claim 1, further comprising the steps of:
connecting said piezoelectric transducer in circuit with an alternating electrical excitation arrangement so that an alternating voltage is applied across said piezoelectric transducer; and measuring a characteristic of at least a component of the voltage appearing across said transducer.
- 6. A method according to claim 5, wherein said characteristic is frequency.
- 7. A method according to claim 5, wherein said characteristic is one of amplitude and phase.
- 8. A method according to claim 5, wherein said step of connecting said piezoelectric transducer in circuit includes the step of connecting said transducer in the feedback path of an electrical oscillator.
- 9. A method according to claim 5, wherein said step of connecting said piezoelectric transducer in circuit includes the step of connecting said transducer to receive at least a portion of the output signal of an external electrical generator.
- 10. A method according to claim 5, wherein said step of connecting said piezoelectric transducer in circuit includes the step of connecting said transducer to receive at least a portion of the output signal of an electrical oscillator.
- 11. A method according to claim 1, wherein said affixing step includes the step of affixing to said torque-bearing member a holder carrying said piezoelectric transducer.
- 12. A method for measuring the torque to which a torque-bearing member is subjected, which torque results in a strain along at least a portion of the length of said torque-bearing member, said method comprising the steps of:
affixing to said portion of said length of said torque-bearing member a piezoelectric transducer which changes its electrical properties in response to torque, and which includes electrodes for coupling signal between said transducer and other circuits; coupling an alternating electrical signal through said transducer by way of said electrodes to produce an alternating electrical signal having at least one characteristic which depends upon said torque; and measuring at least said characteristic of said alternating electrical signal as modified by said transducer, to determine at least one of the magnitude and the direction of said torque.
- 13. A method according to claim 12, wherein said step of affixing includes the step of affixing to said portion of said torque-bearing member a holder which includes said piezoelectric transducer.
- 14. A method according to claim 12, wherein said step of coupling an alternating electrical signal includes the step of connecting said piezoelectric transducer in the feedback loop of an amplifier, to thereby form an oscillator which generates said alternating electrical signal with a frequency which varies in response to said characteristic of said piezoelectric transducer.
- 15. A method according to claim 12, wherein said step of coupling an alternating electrical signal includes the step of connecting said piezoelectric transducer to receive said alternating electrical signal from an external oscillator which operates at a fixed frequency, whereby the amplitude of the signal component appearing across said piezoelectric transducer is responsive to said characteristic of said piezoelectric transducer.
- 16. A method according to claim 12, wherein said step of coupling an alternating electrical signal includes the step of connecting said piezoelectric transducer to receive said alternating electrical signal from an oscillator which operates at a fixed frequency, whereby the amplitude of the signal component appearing across said piezoelectric transducer is responsive to said characteristic of said piezoelectric transducer.
- 17. A method according to claim 12, wherein said step of measuring includes the further steps of:
coupling said alternating electrical signal having at least one characteristic which depends upon said torque to a first input port of a mixer; coupling a sample of said alternating electrical signal from said oscillator to a second input port of said mixer; in said mixer, mixing said alternating electrical signal having at least one characteristic which depends upon said torque with said sample of said alternating electrical signal from said oscillator, for thereby producing a baseband signal component; and measuring a characteristic of said baseband signal component.
- 18. A method according to claim 17, wherein said step of measuring a characteristic includes the step of measuring one of a direct and an alternating characteristic.
- 19. A method according to claim 17, wherein said step of coupling a sample includes the further step of phase-shifting said sample.
- 20. A piezoelectric transducer arrangement, comprising:
a piezoelectric transducer including first and second electrical electrodes, said transducer having defining dimensions; a base including an aperture dimensioned for accepting said piezoelectric transducer, and further including fastening means adapted for fastening said base to a torque-bearing structure; holding means mechanically coupled to said base and to said piezoelectric transducer for holding said transducer in said aperture; a first electrical connection arrangement mounted on said base; a second electrical connection arrangement mounted on said base; a first electrical conductor coupled to said first electrical electrode and to said first electrical connection arrangement; and a second electrical conductor coupled to said second electrical electrode and to said second electrical connection arrangement.
- 21. An arrangement according to claim 20, further comprising:
a protective cover mounted on said base over said piezoelectric transducer.
- 22. A piezoelectric transducer arrangement, comprising:
a piezoelectric transducer including first and second electrical electrodes and a base monolithic therewith, and further including fastening means adapted for fastening said base to a torque-bearing structure; a first electrical connection arrangement mounted on said base; a second electrical connection arrangement mounted on said base; a first electrical conductor coupled to said first electrical electrode and to said first electrical connection arrangement; and a second electrical conductor coupled to said second electrical electrode and to said second electrical connection arrangement.
- 23. A piezoelectric transducer arrangement, comprising:
a piezoelectric transducer including first and second electrical electrodes at which one of a voltage and a charge is generated in response to strain, said transducer including a quartz crystal defining x, y, and z axes, said transducer further including fastening means adapted for fastening said transducer to a torque-bearing structure with its X-axis parallel with the axis about which said torque is applied; a first electrical connection arrangement mounted to said fastening means; a second electrical connection arrangement mounted to said fastening means; a first electrical conductor coupled to said first electrical electrode and to said first electrical connection arrangement; and a second electrical conductor coupled to said second electrical electrode and to said second electrical connection arrangement.
- 24. An integrated torque transmitting member and piezoelectric transducer, comprising:
an elongated torque-carrying member including first and second ends to which torque is applied; a layer of electrically insulating material supported by an exterior surface of said member at a location lying between said first and second ends; an electrically conductive first electrode overlying at least a portion of said electrically insulating material, and electrically insulated from said member; a layer of piezoelectric material overlying at least a portion of said first electrode, and in electrical contact therewith; an electrically conductive second electrode overlying at least a portion of said piezoelectric material, and in electrical contact therewith; and mechanically compliant electrical conducting means coupled to said first and second electrodes, for carrying electrical signal from a portion of said member which moves in response to said torque to a measurement arrangement which is fixed relative to said portion of said member.
- 25. A torque measuring arrangement, comprising:
a torque-bearing member extending at least between first and second planes; a piezoelectric element including a dimension lying parallel to the axis of the torque applied to said torque-bearing member; a strain-conveying coupling member coupled to said torque-bearing member at said first and second planes, and also coupled to said piezoelectric element at a location lying between said first and second planes, for thereby transmitting at least some strain to said piezoelectric transducer in response to torque applied to said torque-bearing member; and a paralleling member coupled to said strain-conveying coupling member at a first location lying between said piezoelectric element and said first plane, and at a second location lying between said piezoelectric element and said second plane, for reducing the strain applied by said first coupling element to said piezoelectric element in response to said torque applied to said torque-bearing member.
- 26. A method for self-diagnosis of a piezoelectric strain transducer including at least two electrodes, said method comprising the steps of:
under no-load conditions, operating said transducer in an oscillatory mode for generating, at a first electrode, an oscillatory signal defining a frequency; measuring one of said frequency and the amplitude of said oscillatory signal under said no-load conditions; under said no-load conditions, applying a known voltage to a second electrode of said transducer, for generating strain in said transducer; during said step of applying a known voltage, measuring said one of said frequency and the amplitude of said oscillatory signal; determining the difference between said first and second one of said frequency and amplitude; comparing said difference with at least one stored value of said one of said frequency and amplitude, and deeming said transducer to be operable if said difference is near enough to said stored value.
- 27. A method for self-diagnosis of a piezoelectric strain transducer, said method comprising the steps of:
under no-load conditions, operating said transducer in an oscillatory mode for generating, at a first electrode, an oscillatory signal defining a frequency; measuring one of said frequency and the amplitude of said oscillatory signal under said no-load conditions; under said no-load conditions, applying a known thermal energy to said transducer, for generating strain in said transducer; during said step of applying a known thermal energy, measuring said one of said frequency and the amplitude of said oscillatory signal; determining the difference between said first and second one of said frequency and amplitude of said oscillatory signal; comparing said difference with at least one stored value, and deeming said transducer to be operable if said difference is near enough to said stored value.
- 28. A method according to claim 27 in which said thermal energy is in the form of a beam of radiant energy impinging on said transducer.
- 29. A method according to claim 27 in which said transducer is thermally coupled with a resistor, and said thermal energy is in the form of electrical current flowing through said resistor.
- 30. A method for self-diagnosis of a piezoelectric strain transducer, said method comprising the steps of:
under no-load conditions, operating said transducer in an oscillatory mode for generating, at a first electrode, an oscillatory signal defining a frequency; measuring one of said frequency and the amplitude of said oscillatory signal under said no-load conditions; under said no-load conditions, applying a voltage to a secondary piezoelectric transducer affixed to said piezoelectric strain transducer, for generating strain in said piezoelectric strain transducer; during said step of applying a known voltage to said secondary piezoelectric transducer, measuring said one of said frequency and the amplitude of said oscillatory signal; determining the difference between said first and second one of said frequency and amplitude of said oscillatory signal; comparing said difference with at least one stored value, and deeming said transducer to be operable if said difference is near enough to said stored value.
Parent Case Info
[0001] This application claims the benefit of the priority date of Provisional application No. 60/111,487 filed Dec. 7, 1998.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60111487 |
Dec 1998 |
US |
Divisions (2)
|
Number |
Date |
Country |
Parent |
10128822 |
Apr 2002 |
US |
Child |
10356831 |
Feb 2003 |
US |
Parent |
09280959 |
Mar 1999 |
US |
Child |
10128822 |
Apr 2002 |
US |