USRE42159E1 - Circuit for compensation for time variation of temperature in an inductive sensor - Google Patents
Circuit for compensation for time variation of temperature in an inductive sensor Download PDFInfo
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- USRE42159E1 USRE42159E1 US11/320,559 US32055905A USRE42159E US RE42159 E1 USRE42159 E1 US RE42159E1 US 32055905 A US32055905 A US 32055905A US RE42159 E USRE42159 E US RE42159E
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Classifications
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01D—MEASURING NOT SPECIALLY ADAPTED FOR A SPECIFIC VARIABLE; ARRANGEMENTS FOR MEASURING TWO OR MORE VARIABLES NOT COVERED IN A SINGLE OTHER SUBCLASS; TARIFF METERING APPARATUS; MEASURING OR TESTING NOT OTHERWISE PROVIDED FOR
- G01D3/00—Indicating or recording apparatus with provision for the special purposes referred to in the subgroups
- G01D3/028—Indicating or recording apparatus with provision for the special purposes referred to in the subgroups mitigating undesired influences, e.g. temperature, pressure
- G01D3/036—Indicating or recording apparatus with provision for the special purposes referred to in the subgroups mitigating undesired influences, e.g. temperature, pressure on measuring arrangements themselves
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01D—MEASURING NOT SPECIALLY ADAPTED FOR A SPECIFIC VARIABLE; ARRANGEMENTS FOR MEASURING TWO OR MORE VARIABLES NOT COVERED IN A SINGLE OTHER SUBCLASS; TARIFF METERING APPARATUS; MEASURING OR TESTING NOT OTHERWISE PROVIDED FOR
- G01D5/00—Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable
- G01D5/12—Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable using electric or magnetic means
- G01D5/14—Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable using electric or magnetic means influencing the magnitude of a current or voltage
- G01D5/20—Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable using electric or magnetic means influencing the magnitude of a current or voltage by varying inductance, e.g. by a movable armature
- G01D5/2006—Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable using electric or magnetic means influencing the magnitude of a current or voltage by varying inductance, e.g. by a movable armature by influencing the self-induction of one or more coils
- G01D5/2013—Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable using electric or magnetic means influencing the magnitude of a current or voltage by varying inductance, e.g. by a movable armature by influencing the self-induction of one or more coils by a movable ferromagnetic element, e.g. a core
Definitions
- This invention generally relates to sensors. More particularly, it relates to variable reluctance transducers. Even more particularly, it relates to an improved system for greater accuracy in determining position or displacement in view of changes in temperature.
- Sensors are being developed for use in roads, bridges, dams, buildings, towers, and vehicles that may provide many information, including displacement, strain, speed, acceleration, temperature, pressure, and force.
- inductive transducers such as a differential variable reluctance transformer (DVRT)
- DVRT differential variable reluctance transformer
- a DVRT includes a ferrite core that moves within two coils that are arranged in a bridge configuration. Inductance and impedance of the coils changes with dis- placement of the ferrite core within them, and the displacement of the core is accurately determined by the change in inductance or impedance of the coils.
- the '593 patent provides a circuit for a DVRT that compensates for a temperature gradient across a sensor.
- the '593 patent recognizes that a temperature gradient across the coils can provide a change in the resistance of the wire forming one of the coils more than it changes the resistance in the other coil, and this difference in resistance can change the differential impedance of the coils, essentially mimicking a change in position, resulting in an error in measured displacement.
- Situations where one coil may be hotter than the other coil are common in applications such as automotive.
- a circuit is provided to adjust the output compensating for the difference in resistance in the two coils introduced by a temperature gradient or a temperature difference between the coils.
- an electronic device that includes a sensor having a magnetically permeable member and a circuit.
- the circuit adjusts sensor output to provide sensor output data independent of temperature of the magnetically permeable member.
- the circuit uses a signal derived from resistance of the sensor to correct for temperature.
- an electronic device that includes a coil, a magnetically permeable member that extends in the coil, and a circuit.
- the circuit adjusts output voltage of the coil to compensate for a change in temperature in the coil and in the member.
- an electronic device that includes an inductor, a magnetically permeable member coupled to the inductor, and a circuit.
- the circuit adjusts a voltage output of the inductor to provide a voltage independent of temperature of the inductor and temperature of the magnetically permeable member.
- an electronic device for sensing at least one parameter that includes a first circuit element comprising a reactance and a resistance, the first circuit element comprising input terminals and output terminals.
- the input terminals are for providing a first input signal and a second input signal different from the first signal to the first circuit element.
- the output terminals are for providing a first output signal and a second output signal from the first circuit element.
- a second circuit element is connected to the output terminals to use the first output signal and the second output signal, wherein the second circuit element generates a first parameter that depends exclusively on the resistance and a second parameter that depends exclusively on the reactance.
- a third circuit element is connected to the second circuit element wherein the third circuit element compensates the second parameter for changes in the first parameter.
- a sensor comprising a component and a circuit.
- the component is used by the circuit both for sensing a first parameter and for sensing temperature.
- the temperature is used in the circuit for correcting the first parameter to make output of the sensor independent of change in temperature with lime.
- FIG. 1 is a block diagram of a circuit to correct a DVRT for time and spatial variations in temperature
- FIG. 2a is cross sectional view of a DVRT in the null position
- FIG. 2b is cross sectional view of the DVRT of FIG. 2a in the fully displaced position
- FIG. 3 is a block diagram showing measurement of resistance of one coil of a DVRT to correct a DVRT for time and spatial variations in temperature;
- FIG. 4a is a cross sectional view of a single coil DVRT in the null position
- FIG. 4b is cross sectional view of the DVRT of FIG. 4a in the fully displaced position
- FIG. 5 is a flow chart showing the algorithm of FIG. 1 to compensate for change in temperature in the permeable member
- FIG. 6 is a graph of test data comparing a device of the present invention to a device without the circuit element for compensating for temperature changes in the highly permeable member.
- a DVRT sensor that includes the circuit of '593 patent, incorporated herein by reference, provides substantial advantage in temperature compensation, but does not include all the temperature correcting needed. They recognized that a bridge circuit, such as that included in a DVRT, cancels the effects of uniform changes in temperature in the wiring of the coils of the DVRT, a substantial advantage for such differential sensors. They also recognized that the circuit of the '593 patent adequately corrects for the different coil wire resistances introduced by temperature gradients across the coils, an advantage in applications, such as automotive where such temperature gradients are common. The inventors then recognized an additional mechanism by which a change in temperature can cause errors: the magnetic permeability of the ferrite core varies with temperature.
- the present invention provides a circuit that corrects for variation in permeability of the ferrite core as a result of a spatially uniform change in temperature.
- the present invention also integrates the new circuit with the circuit of the '593 application to compensate both for temperature changes in the ferrite core and for temperature gradients across the coils so as to provide very precise displacement sensing that is independent of both changes in temperature over time in the windings of the coils or in the ferrite core and for temperature gradients across the coils.
- the present invention enables using a single coil inductance transducer which until now has not been practical in part because of their higher sensitivity to temperature variation. The sensitivity to temperature variation is eliminated by this invention.
- Inductive displacement sensors utilize a coil and a permeable core that can be moved relative to the coil.
- the core When the core is moved into the coil additional permeable material moves in, and this increases the inductance of the coil. A corresponding reduction in inductance occurs when the core moves out of the coil.
- a single core is used with two coils. The core leaves one coil as it enters more deeply into the other. The two coils are wired to provide a differential measurement, and this differential measurement lowers sensitivity to temperature change in the wiring since an increase or decrease in resistance in both two coils is cancelled by the differential measurement.
- the differential measurement is inadequate to correct for changes in permeability of the ferrite core except when an equal amount of the core is in both coils. In this unique case the error due to change in permeability of the core with temperature is zero. As soon as the core is displaced from the null position, however, so more is in one coil than the other, the differential measurement amplifies error, and the amount of error increases with the displacement from the null position.
- Differential pair of coils 20 a, 20 b for displacement sensor 22 are arranged in full Wheatstone bridge circuit 24 a, as shown in FIG. 1 and FIGS. 2a , 2 b.
- a single coil in a half Wheatstone bridge circuit can also be used.
- Both an AC sinusoidal voltage and a DC voltage are applied across bridge inputs 26 a, 26 b.
- AC voltage is about 5 volts peak to peak at about 70 kHz and DC voltage is about 1 volt.
- DC voltage is about 1 volt.
- various other voltage amplitudes and frequencies can be used for each.
- a DC voltage a low frequency AC voltage can be used, such as 1 volt at 100 Hz. This would enable the use of an AC synchronous demodulator, as shown in FIG. 1 , which improves signal to noise ratio in a high noise environment.
- Capacitors 28 a, 28 b and inductors 30 a, 30 b are used to isolate AC and DC drive voltages from each other.
- Capacitors 28 a, 28 b can have a value of about 1 microfarad and inductors 30 a, 30 b a value of about 1000 microhenries. Various other values can be used depending on the two frequencies of the two applied voltages.
- each coil 20 a, 20 b of Wheatstone bridge 24 a is proportional to temperature.
- This DC resistance of wiring in coils 20 a, 20 b is independent of the position of core 41 within coils 20 a, 20 b, varying only with temperature, so a change in DC voltage across the coils, which is proportional to their resistance, provides a measurement of a change in temperature.
- Coils 20 a, 20 b are fabricated of wire having a dimension of about 48 gauge and typically has a resistance of about 20 ohms for each coil.
- DC resistance of each coil is very low greater accuracy is obtained by summing DC voltages across both coils to provide an indication of the temperature of the coils.
- This DC voltage is obtained by passing output signals from output terminals 32 a, 32 b of coils 20 a, 20 b through low pass filter 34 and summing the voltage drops across each coil 20 a, 20 b individually in summing amplifier 40 .
- the voltage sum is about 100 mV at room temperature and this will vary as temperature changes.
- Voltage across single coil 20 a of pair of coils 20 a, 20 b can also be used to provide a measure of temperature, as shown in FIG. 3 .
- Difference amplifier 40 ′ is used instead of summing amplifier 40 and the voltage provided to difference amplifier 40 ′ is the voltage across one of the coils 20 a or 20 b.
- Sensor 22 ′ having single coil 20 can also be used, as shown in FIGS. 4a , 4 b, and correction for temperature variation equally provided. This measured temperature can be used to correct for variation in the wiring of the single coil and variation in the permeability of core 41 .
- Advantage in having a single coil is that the sensor can be smaller since half the length is needed to measure the same displacement with a single coil.
- Displacement is measured by measuring the change in AC voltage across the coil and adjusting this voltage to correct for the temperature.
- the AC voltage difference signal or a signal conditioned to correct for a temperature gradient, is provided to voltage controlled variable gain amplifier (VGA) 42 , as shown in FIG. 1 .
- VGA voltage controlled variable gain amplifier
- the sum of the DC voltages from summing amplifier 40 is fed to modulate the gain of VGA 42 to correct the AC difference signal from the coils for changes in temperature.
- the gain of VGA 42 is modulated by the DC voltage signal in the opposite direction of the gain error caused by the temperature sensitive permeability of the core, providing a corrected output voltage that is now more nearly independent of temperature. This temperature output voltage is now used to determine the displacement value.
- Wiring of the device itself is used to correct readings for changes in temperature in another part of the device, the core.
- a programmable device such as a microprocessor
- VGA programmable gate array
- the microprocessor can also be used to provide the excitation signals.
- the present invention is easily combined with the technique described in the '593 patent, and the combination is shown in FIG. 1 , providing a complete temperature compensation method for both time and spacial temperature variation.
- VGA 42 need be added to the circuit of the '593 patent.
- Voltage controlled amplifier 42 is connected to receive gradient compensated output from difference amplifier 50 and temperature information from summing amplifier 40 , and its output provides the additional correction for temperature change in ferrite core 41 .
- temperature gradient correcting circuit 52 provides a DC voltage level corresponding to amplitude of displacement of core 41 corrected for spatial variation in temperature across coils 20 a, 20 b.
- the AC signal between output terminals 32 a, 32 b of coils 20 a, 20 b is first analyzed by stripping off DC and low frequency signal at high pass filter 44 .
- the AC signal is now converted to a DC level in AC synchronous demodulator 54 .
- the DC level gives an uncompensated indication of the magnitude of displacement of core 41 in coils 32 a, 32 b.
- a first compensation step is now provided to the signal from demodulator 54 with gradient of temperature information from DC signal conditioner 56 in difference amplifier 50 .
- DC signal conditioner 56 provides an output that is proportional to the difference in temperature between the two coils to give the temperature gradient information.
- the output of difference amplifier 50 is a signal proportional to the displacement of core 41 corrected for gradient of temperature across coils 20 a, 20 b.
- the output of VGA 42 is a signal proportional to the displacement of core 41 corrected for both gradient of temperature across coils 20 a, 20 b and for a change of temperature with time across both coils 20 a, 20 b and core 41 .
- a low frequency signal can be used instead of a DC signal.
- AC synchronous demodulator 58 would be used in place of signal conditioner 56 , and similarly connected as shown by dotted line 59 of FIG. 1 .
- summing amplifier 40 receives low frequency inputs from both coils after the signal passes through low pass filter 34 . Summing the low frequency outputs gives a voltage that tracks with temperature.
- AC synchronous demodulator 56 takes the difference in voltages across the coils on the two sides of the bridge and converts to a DC voltage to be used for compensating for the gradient in temperature.
- the DC difference voltage represents the temperature gradient across the two coils arranged in a bridge configuration. No correction is needed for a uniform temperature change with time same the bridge circuit automatically cancels that out. Some temperature differences do not equally effect both sides of the bridge, such as a change in permeability of the core 41 with temperature. In this case, there will be no cancellation, and output of the sensor will vary with temperature. This variation can be corrected by determining the temperature by measuring resistance of the windings with a DC or low frequency signal and using that result to correct the high frequency signal. The low frequency signal can also be used to correct for gradient of temperature.
- a voltage controlled gain amplifier modulated with a voltage containing temperature information can be used in any system using a coil to measure a physical parameter.
- These coils may be wound on a bobbin or coil form, may be free standing, or can be etched or patterned onto a substrate.
- the substrate can be a circuit board, and can also include signal conditioning electronics.
- These coils may be used for other purposes than displacement measurement, such as to detect the position or presence of conductive and ferrous targets.
- the coil and the target may be used in non-contacting position sensors and in plunger type position sensors, where the relative position of the coil and the target are measured.
- These types of devices include displacement sensors, but can be combined with the appropriate flexure element to construct force, acceleration, pressure, and torque sensors.
- Targets may also be a gear tooth or may be patterned onto a substrate such that the output of the sensing coil produces a waveform which can be used to measure linear or angular position.
- the target material may exhibit magnetoelastic characteristics, such as permalloy ribbons and maraging steels and these magnetoelastic targets may be combined with sensing coils to produce non-contact strain, stress, and torque sensors.
- M(T) is a constant indicating the slope of the linear relationship between displacement and measured AC voltage V.
- M(T) depends on the permeability of core 41 , on the magnitude of V AC and the voltage gain of amplifiers in AC synchronous demodulator 54 . Since the permeability of core 41 depends on temperature M(T) will be a function of temperature too. More specifically, equation (1) links displacement D of core 41 to voltage V across coils 20 a, 20 b at output pads 32 a, 32 b.
- ⁇ is the frequency of the AC signal applied across pads 26 a, 2 b.
- L 1 is the inductance of coil 20 a and L 2 is the inductance of coil 20 b including the effect of core 41 within each coil.
- G(T) is a function that has an inverse relationship to temperature to that of M(T) to compensate for the change in permeability of core 41 with temperature so that product of M(T) and G(T) is constant at all temperatures.
- C is the y intercept of the linear relationship and is a constant that depends on the definition of the initial position of core 41 core 41 .
- Voltage V( ⁇ L 1 ⁇ L 2 ) is determined from voltages proportional to resistance and reactance in coils 32 a, 32 b of sensor 22 .
- Coil inductance L includes the effect of turning the wire in a coil and the effect of core 41 within that wiring.
- L for each coil is a function of displacement of core 41 .
- L is the total inductance of that coil with core 41 as it is located within the coil for a particular displacement of core 41 .
- R is the resistance of the wiring making up that particular coil. R varies with temperature of the wiring and may be determined from the DC signal applied to pads 26 a, 26 b as described herein above.
- V AC ( ⁇ L 1 ) V AC (Z 1 ) ⁇ V DC (R 1 ) (3)
- V AC ( ⁇ L 1 ) is the voltage associated with the inductive reactance of coil 1
- V AC (Z 1 ) is the voltage associated with the measured impedance of coil 1
- V DC (R 1 ) is the voltage associated with the resistance of wiring within coil 1 .
- a similar equation applies to coil 2 .
- difference amplifier 50 subtracts the sum of voltages associated with wire resistance of both coils from the voltage associated with the overall impedance of the coils to obtain the voltage associated with just the inductive reactance of the coils. This voltage is now corrected according to G(T) for temperature change in core 41 based on the same resistance used in equations (2) and (3).
- the invention follows the steps shown in the flow chart in FIG. 5 .
- AC voltage difference measured across pads 32 a, 32 b provides a measure of impedance (Z 1 ⁇ Z 2 ) of coils 20 a, 20 b, as shown in step 60 .
- DC voltage across coil 20 a plus DC voltage across coil 20 b provides a measure of the sum of the resistances of coils 20 a, 20 b, as shown in step 62 .
- the voltage associated with the resistance is actually used by difference amplifier 50 to calculate the voltage difference associated just with the difference in inductive reactance of the two coils, as shown in step 66 .
- Temperature correction of voltage is now provided for change in temperature of core 41 .
- Displacement is now calculated as shown in step 68 .
- Test results for a device of the present invention are shown in FIG. 6 in comparison with a standard uncompensated DVRT. Both devices have the gradient of temperature compensation provided by the '593 patent.
- the bottom trace shows substantial variation in output voltage as temperature changes from 25 C. to 100 C. and then back to 40 C.
- the top trace shows no change in output voltage over these same temperature changes.
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- Physics & Mathematics (AREA)
- General Physics & Mathematics (AREA)
- Measurement Of Length, Angles, Or The Like Using Electric Or Magnetic Means (AREA)
- Indication And Recording Devices For Special Purposes And Tariff Metering Devices (AREA)
- Transmission And Conversion Of Sensor Element Output (AREA)
Abstract
Description
D=M(T)VAC(ωL1−ωL2)G(T)+C (1)
where D is the displacement of
Z=ωL+R (2)
where Z is the impedance of that coil including both impedance from coil resistance and impedance from coil inductance. The voltage associated with the impedance Z is what is measured at
VAC(ωL1)=VAC(Z1)−VDC(R1) (3)
where VAC(ωL1) is the voltage associated with the inductive reactance of coil 1. VAC(Z1) is the voltage associated with the measured impedance of coil 1 and VDC(R1) is the voltage associated with the resistance of wiring within coil 1. A similar equation applies to coil 2.
T=KR+B (4)
Claims (73)
Priority Applications (1)
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US11/320,559 USRE42159E1 (en) | 2000-07-24 | 2005-12-28 | Circuit for compensation for time variation of temperature in an inductive sensor |
Applications Claiming Priority (3)
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US22036400P | 2000-07-24 | 2000-07-24 | |
US09/911,959 US6828779B2 (en) | 2000-07-24 | 2001-07-24 | Circuit for compensating for time variation of temperature in an inductive sensor |
US11/320,559 USRE42159E1 (en) | 2000-07-24 | 2005-12-28 | Circuit for compensation for time variation of temperature in an inductive sensor |
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US09/911,959 Reissue US6828779B2 (en) | 2000-07-24 | 2001-07-24 | Circuit for compensating for time variation of temperature in an inductive sensor |
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USRE42159E1 true USRE42159E1 (en) | 2011-02-22 |
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US09/911,959 Ceased US6828779B2 (en) | 2000-07-24 | 2001-07-24 | Circuit for compensating for time variation of temperature in an inductive sensor |
US11/001,829 Expired - Lifetime US7061229B2 (en) | 2000-07-24 | 2004-12-02 | Circuit for compensating for time variation of temperature in an inductive sensor |
US11/320,559 Expired - Lifetime USRE42159E1 (en) | 2000-07-24 | 2005-12-28 | Circuit for compensation for time variation of temperature in an inductive sensor |
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US09/911,959 Ceased US6828779B2 (en) | 2000-07-24 | 2001-07-24 | Circuit for compensating for time variation of temperature in an inductive sensor |
US11/001,829 Expired - Lifetime US7061229B2 (en) | 2000-07-24 | 2004-12-02 | Circuit for compensating for time variation of temperature in an inductive sensor |
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US4956606A (en) | 1984-10-17 | 1990-09-11 | Mine Safety Appliances Company | Non-contact inductive distance measuring system with temperature compensation |
US4954776A (en) | 1988-04-22 | 1990-09-04 | Penny & Giles Controls Limited | Linear displacement transducers utilizing voltage component in phase with current that varies linearly with core displacement |
US5015948A (en) | 1989-04-24 | 1991-05-14 | Cadillac Gage Textron Inc. | Transducer for providing a position signal and transducer temperature |
US5115193A (en) | 1990-12-05 | 1992-05-19 | Data Instruments, Inc. | Inductive linear displacement transducer and temperature-compensating signal processor |
US5381090A (en) | 1991-11-27 | 1995-01-10 | Ntn Technical Center | Hub and bearing assembly with integrated rotation sensor and temperature measurement feature |
US5180978A (en) | 1991-12-02 | 1993-01-19 | Honeywell Inc. | Proximity sensor with reduced temperature sensitivity using A.C. and D.C. energy |
US5332966A (en) | 1991-12-13 | 1994-07-26 | Vdo Adolf Schindling Ag | Method of compensating for the temperature of inductive sensors |
US5521496A (en) | 1992-10-02 | 1996-05-28 | Positek Limited | Detection circuits for position sensors |
US5351003A (en) | 1993-04-02 | 1994-09-27 | General Motors Corporation | Temperature compensated magnetoresistive position sensor |
US5914593A (en) | 1993-06-21 | 1999-06-22 | Micro Strain Company, Inc. | Temperature gradient compensation circuit |
US5332996A (en) | 1993-06-30 | 1994-07-26 | At&T Bell Laboratories | Method and apparatus for all code testing |
Also Published As
Publication number | Publication date |
---|---|
US6828779B2 (en) | 2004-12-07 |
US20050093537A1 (en) | 2005-05-05 |
US7061229B2 (en) | 2006-06-13 |
US20020067176A1 (en) | 2002-06-06 |
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