WO2015167612A1 - Systems and methods for monitoring temperature using a magnetostrictive probe - Google Patents
Systems and methods for monitoring temperature using a magnetostrictive probe Download PDFInfo
- Publication number
- WO2015167612A1 WO2015167612A1 PCT/US2014/065951 US2014065951W WO2015167612A1 WO 2015167612 A1 WO2015167612 A1 WO 2015167612A1 US 2014065951 W US2014065951 W US 2014065951W WO 2015167612 A1 WO2015167612 A1 WO 2015167612A1
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- WIPO (PCT)
- Prior art keywords
- probe
- coil
- transducer
- magnetostrictive
- stator
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
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Classifications
-
- E—FIXED CONSTRUCTIONS
- E21—EARTH OR ROCK DRILLING; MINING
- E21B—EARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B47/00—Survey of boreholes or wells
- E21B47/06—Measuring temperature or pressure
-
- E—FIXED CONSTRUCTIONS
- E21—EARTH OR ROCK DRILLING; MINING
- E21B—EARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B47/00—Survey of boreholes or wells
- E21B47/06—Measuring temperature or pressure
- E21B47/07—Temperature
-
- E—FIXED CONSTRUCTIONS
- E21—EARTH OR ROCK DRILLING; MINING
- E21B—EARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B43/00—Methods or apparatus for obtaining oil, gas, water, soluble or meltable materials or a slurry of minerals from wells
- E21B43/12—Methods or apparatus for controlling the flow of the obtained fluid to or in wells
- E21B43/121—Lifting well fluids
- E21B43/128—Adaptation of pump systems with down-hole electric drives
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01K—MEASURING TEMPERATURE; MEASURING QUANTITY OF HEAT; THERMALLY-SENSITIVE ELEMENTS NOT OTHERWISE PROVIDED FOR
- G01K11/00—Measuring temperature based upon physical or chemical changes not covered by groups G01K3/00, G01K5/00, G01K7/00 or G01K9/00
- G01K11/22—Measuring temperature based upon physical or chemical changes not covered by groups G01K3/00, G01K5/00, G01K7/00 or G01K9/00 using measurement of acoustic effects
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01K—MEASURING TEMPERATURE; MEASURING QUANTITY OF HEAT; THERMALLY-SENSITIVE ELEMENTS NOT OTHERWISE PROVIDED FOR
- G01K13/00—Thermometers specially adapted for specific purposes
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01K—MEASURING TEMPERATURE; MEASURING QUANTITY OF HEAT; THERMALLY-SENSITIVE ELEMENTS NOT OTHERWISE PROVIDED FOR
- G01K7/00—Measuring temperature based on the use of electric or magnetic elements directly sensitive to heat ; Power supply therefor, e.g. using thermoelectric elements
- G01K7/36—Measuring temperature based on the use of electric or magnetic elements directly sensitive to heat ; Power supply therefor, e.g. using thermoelectric elements using magnetic elements, e.g. magnets, coils
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02K—DYNAMO-ELECTRIC MACHINES
- H02K11/00—Structural association of dynamo-electric machines with electric components or with devices for shielding, monitoring or protection
- H02K11/20—Structural association of dynamo-electric machines with electric components or with devices for shielding, monitoring or protection for measuring, monitoring, testing, protecting or switching
- H02K11/26—Devices for sensing voltage, or actuated thereby, e.g. overvoltage protection devices
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01F—MEASURING VOLUME, VOLUME FLOW, MASS FLOW OR LIQUID LEVEL; METERING BY VOLUME
- G01F23/00—Indicating or measuring liquid level or level of fluent solid material, e.g. indicating in terms of volume or indicating by means of an alarm
- G01F23/22—Indicating or measuring liquid level or level of fluent solid material, e.g. indicating in terms of volume or indicating by means of an alarm by measuring physical variables, other than linear dimensions, pressure or weight, dependent on the level to be measured, e.g. by difference of heat transfer of steam or water
- G01F23/24—Indicating or measuring liquid level or level of fluent solid material, e.g. indicating in terms of volume or indicating by means of an alarm by measuring physical variables, other than linear dimensions, pressure or weight, dependent on the level to be measured, e.g. by difference of heat transfer of steam or water by measuring variations of resistance of resistors due to contact with conductor fluid
- G01F23/246—Indicating or measuring liquid level or level of fluent solid material, e.g. indicating in terms of volume or indicating by means of an alarm by measuring physical variables, other than linear dimensions, pressure or weight, dependent on the level to be measured, e.g. by difference of heat transfer of steam or water by measuring variations of resistance of resistors due to contact with conductor fluid thermal devices
- G01F23/247—Indicating or measuring liquid level or level of fluent solid material, e.g. indicating in terms of volume or indicating by means of an alarm by measuring physical variables, other than linear dimensions, pressure or weight, dependent on the level to be measured, e.g. by difference of heat transfer of steam or water by measuring variations of resistance of resistors due to contact with conductor fluid thermal devices for discrete levels
- G01F23/248—Constructional details; Mounting of probes
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01F—MEASURING VOLUME, VOLUME FLOW, MASS FLOW OR LIQUID LEVEL; METERING BY VOLUME
- G01F23/00—Indicating or measuring liquid level or level of fluent solid material, e.g. indicating in terms of volume or indicating by means of an alarm
- G01F23/22—Indicating or measuring liquid level or level of fluent solid material, e.g. indicating in terms of volume or indicating by means of an alarm by measuring physical variables, other than linear dimensions, pressure or weight, dependent on the level to be measured, e.g. by difference of heat transfer of steam or water
- G01F23/28—Indicating or measuring liquid level or level of fluent solid material, e.g. indicating in terms of volume or indicating by means of an alarm by measuring physical variables, other than linear dimensions, pressure or weight, dependent on the level to be measured, e.g. by difference of heat transfer of steam or water by measuring the variations of parameters of electromagnetic or acoustic waves applied directly to the liquid or fluent solid material
- G01F23/296—Acoustic waves
- G01F23/2962—Measuring transit time of reflected waves
- G01F23/2963—Measuring transit time of reflected waves magnetostrictive
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01K—MEASURING TEMPERATURE; MEASURING QUANTITY OF HEAT; THERMALLY-SENSITIVE ELEMENTS NOT OTHERWISE PROVIDED FOR
- G01K2205/00—Application of thermometers in motors, e.g. of a vehicle
Definitions
- the invention relates generally to monitoring downhole equipment, and more specifically to systems and methods for monitoring temperature and/or temperature distribution in downhole equipment such as electric submersible pump (ESP) systems using magneto strictive probes.
- ESP electric submersible pump
- Oil production often requires the use of artificial lift systems to recover oil and other well fluids from wells.
- artificial lift systems may include, for example, ESP systems and subsea boosting systems. These systems are typically very expensive to install and operate.
- a lift system may, for example, cost tens of millions of dollars to install and hundreds of thousands of dollars each day to operate. The costs associated with failures and downtime in these systems are also very high.
- the system may continue to operate without any changes. If the monitored parameters fall outside the desired operating ranges, but are still within acceptable limits (a "yellow” zone), it may be necessary to adjust the operation of the system in some manner. This may include modifying control signals, updating operating parameters within the downhole equipment, and so on. These adjustments are intended to move the operation of the system (as indicated by the monitored parameters) back into the green operating zone. If the adjustments do not cause the parameters to return to the desired operating ranges, this may indicate that it is necessary to perform repair or maintenance on the system. If the monitored parameters fall outside the range of acceptable values (a "red” zone), it may be necessary to discontinue operation of the system, and possibly repair or replace one or more system components.
- thermocouples were designed into equipment such as ESP motors to provide information on the temperature of the equipment.
- a thermocouple can only monitor the temperature at a single point.
- thermocouples can typically only monitor the temperatures near the ends of the motor because these are the only areas that are accessible. A large portion of the motor, especially near its center, is not accessible and consequently cannot be monitored.
- This disclosure is directed to systems and methods for monitoring temperature in downhole equipment such as ESP systems using magnetostrictive probes that solve one or more of the problems discussed above.
- One particular embodiment comprises an ESP motor having one or more magnetostrictive sensors.
- the motor has a stator with a bore
- the magnetostrictive sensors can be positioned at various locations within the motor.
- Each of the magnetostrictive sensors includes a transducer, a probe, and electronic components (e.g., circuitry) coupled to the transducer.
- the circuitry is configured to generate an initial electrical signal that is conveyed to the transducer. This generates a corresponding initial acoustic signal in the probe.
- the acoustic signal propagates through the probe, and when the acoustic wave reaches each of a set of reflection points in the probe, a reflected wave is propagated back toward the transducer.
- the transducer senses the reflected acoustic signals and generates corresponding electrical signals that are interpreted by the circuitry.
- the circuitry determines timing intervals between the initial acoustic wave and the reflected waves, and uses this information to determine temperatures at one or more locations in the probe (hence in the motor).
- the magneto strictive sensors can be placed at various locations in the ESP motor (or in other equipment in alternative embodiments).
- a sensor can be positioned so that its probe extends into a hollow interior of the motor's shaft, so that the probe remains stationary while the shaft rotates within the bore of the stator.
- Magneto strictive sensors can also be positioned so that their probes are within the slots in the stator, adjacent to the windings of magnet wire that are positioned in the slots.
- Magneto strictive sensors can also be positioned so that their probes extend between the housing of the stator and the stack of stator laminations. Magneto strictive sensors can also be positioned with their probes embedded into the stator laminations. These sensors can then be used to sense temperatures at different locations along the lengths of the probes.
- the circuitry may be configured to determine the temperature between a pair of reflection points by identifying a relative time shift of the reflected signals from the two reflection points and converting the relative time shift to a corresponding temperature reading (based on the propagation speed of the acoustic wave through the probe as a function of temperature).
- the probes can sense temperatures over complex surfaces at non-colinear locations.
- the probes of the magnetostrictive sensors can be made of various types (e.g., ferromagnetic) of material. Each probe can have one or more reflection points, such as notches or stress points (e.g., weld locations) in the probe. The notches may, for example, have triangular, rectangular, circumferential, or any other suitable configuration.
- the transducers of the magnetostrictive sensors may have various configurations as well. For instance, some embodiments use magnets in combination with one or more coils, while others are magnet-less transducers. In one embodiment, a transducer uses multiple coils that are wound in opposite directions (e.g., right-handed and left handed windings).
- the coils are connected in series, and are axially displaced from each other so that the acoustic wave induced by each coil is in phase with the acoustic waves induced by the other coils, thereby strengthening the overall acoustic wave in the probe.
- An alternative embodiment of the invention may comprise a magnetostrictive sensor.
- the sensor may, for example, utilize a magnet-less transducer positioned near the end of a suitable wire probe.
- the transducer may use multiple, serially, connected coils to induce acoustic waves in the probe.
- the coils may be wound in opposite directions to generate axially opposed magnetic fields.
- the coils (whether wound in the same direction or in the opposite direction) can be axially displaced from each other by amounts that cause the acoustic waves generated by each coil to be in phase with the acoustic waves generated by the other coils.
- FIGURE 1 is a diagram illustrating an ESP system installed in a well in accordance with one embodiment.
- FIGURE 2 is a diagram illustrating the structure of an exemplary motor suitable for use in an ESP system in accordance with one embodiment.
- FIGURE 3 is a diagram illustrating a cross-sectional view of an ESP motor in accordance with one embodiment.
- FIGURES 4A-4G are diagrams illustrating the structure of a magneto strictive temperature sensor in accordance with several different embodiments.
- FIGURES 5A-5D are functional block diagrams illustrating various possible configurations of multiple-coil transducers in various embodiments.
- FIGURE 6 is a diagram illustrating the effect of temperature on a reflected pulse in accordance with one embodiment.
- the invention includes systems and methods for temperature and/or temperature distribution measurement in downhole environments that may have extremely high temperatures and pressures. These systems and methods involve the use of magneto strictive sensors that may be implemented in wells and in downhole tools such as ESP systems. These magneto strictive sensors provide a simple and rugged means to sense temperatures at multiple locations, both internal and external to downhole tools.
- magneto strictive sensors are positioned in several locations within an ESP motor.
- the sensors may be positioned, for example, at the axis of the motor's shaft, within one of the stator slots, within the body of the stator itself, and between the stator body and the stator housing.
- Each sensor includes a thin magneto strictive probe which is coupled to a magneto strictive transducer.
- the magneto strictive transducer generates an acoustic wave that propagates through the probe.
- the probe has one or more reflection points (e.g., notches or other stress points) fabricated using Electrical Discharge Machining (EDM), laser, and other methods, each of which generates a reflection of the acoustic wave in the probe, and provides a corresponding temperature indication.
- EDM Electrical Discharge Machining
- the transducer senses the reflections of the acoustic wave and provides this information to processing circuitry that determines the temperature and/or temperature distribution along the probe based on the timing of the reflections and the known dimensions of the probe and the reflecting points.
- the magneto strictive transducer and probe may be constructed using only metal components, enabling them to operate at extremely high temperatures (e.g., over 1000°F) and pressures.
- the sensors are therefore very robust, and can provide long-term, accurate monitoring of temperatures in harsh downhole environments.
- Individual magneto strictive sensors can provide temperature profiles that include multiple points over complex surfaces, and in confined spaces.
- FIGURE 1 a diagram illustrating an ESP system installed in a well is shown.
- ESP system 100 is installed within the bore 110 of a well.
- the well may be a subsea well or a surface well.
- ESP system 100 is suspended in the well from production tubing 120.
- ESP system 100 includes a pump 101, a seal 102 and a motor 103.
- a power cable 104 couples surface equipment (not shown) to ESP system 100. Cable 104 may carry data signals between the surface equipment and ESP system 100, as well as providing power from the surface equipment to the ESP system.
- ESP system 100 Because of the increasing costs of installing, maintaining and operating artificial lift systems such as ESP system 100, it is important to monitor conditions relating to operation of these systems.
- One of the operating conditions that is very important in assessing the health of an artificial lift system is the temperature of the system.
- the operating temperature of the system can be measured in various ways.
- thermocouples e.g., single-location sensing, and lack of robustness
- ESP system 100 incorporates magneto strictive sensors to sense the temperature at multiple points within the system.
- motor 103 includes multiple sensors (105, 106) to sense temperatures at various locations in the motor.
- sensors 105 and 106 are depicted as blocks in FIGURE 1, the sensors (and particularly the probes of the sensors) are elongated, as will be described in more detail below.
- FIGURE 2 a diagram illustrating the structure of an exemplary motor suitable for use in an ESP system is shown.
- motor 200 has a stator 210 and a rotor 220.
- Stator 210 is generally cylindrical, with a coaxial bore that runs through it.
- Stator 210 is formed by stacking a set of circular laminations together and pressing the stacked laminations into a housing 21 1.
- Rotor 220 is coaxially positioned within the bore of stator 210.
- Rotor 220 is attached to a shaft 230 that is coaxial with the rotor and stator 210.
- rotor 220 includes multiple sections (e.g., 221), where bearings (e.g., 240) are positioned at the ends of each section.
- the bearings 240 support shaft 230, and consequently rotor 220, within the bore of stator 210 and allow the rotor and shaft 230 to rotate within the stator.
- the motor includes magneto strictive sensors that sense temperatures in various locations.
- the temperature sensing probes are positioned between the stator housing and the stator core (250), within the stator core and/or slots in the stator core (251), and at the axis of the shaft that runs through the bore of the stator (252).
- FIGURE 3 a diagram illustrating a cross-sectional view of an ESP motor is shown.
- the motor includes stator housing 211 into which the stack of stator laminations (e.g., 213) are pressed.
- Each of the stator laminations has a set of apertures therethrough (e.g., 214). When the laminations are stacked together, the apertures are aligned so that they form passageways, or "slots" through the stator core.
- Windings of magnet wire are positioned in the slots of the assembled stator.
- each lamination includes a central aperture (215) which forms a bore through the stator.
- the rotor (220) is positioned within bore 215 of the stator.
- Rotor 220 is coupled to shaft 230 so that they rotate together within the bore of the stator.
- the motor depicted in FIGURE 3 includes four different magneto strictive sensors.
- the probes of these sensors are positioned at different locations within the motor to sense the temperatures at these different locations.
- Each of the sensors includes a probe that is a thin, elongated piece of metal or other suitable material.
- the probes run parallel to the axis of the motor (into the page in FIGURE 3), so only a small cross section of each probe appears in the figure.
- one probe (250) is positioned between the stator housing and the stator core. A groove may be formed in the outer perimeter of each lamination to accommodate the probe.
- Another probe (251) is positioned within one of the stator slots.
- This probe is positioned alongside the magnet wire in the slot (although it may be separated from the wire by an insulator).
- Another of the probes (252) is positioned near the axis of the shaft (which is coaxial with the rotor and stator).
- Another probe (253) is positioned within the stator core.
- a passageway through the stator core may be formed by punching a small hole in each of the stator laminations.
- a single vertically positioned probe is able to fully map the temperature distribution along the vertical length of the probe, which could be more than 10m (33 ft).
- Full scale radial temperature mapping can be realized by positioning four magneto strictive sensors that are distributed in the radial direction.
- the transducer for sensor 252 may be positioned at the bottom of the motor, with the probe extending into the open lower end of the shaft. This allows the shaft to rotate around the probe, which remains substantially stationary.
- the transducers for sensors 250 and 251 are depicted in FIGURE 2 as being positioned near the top of the motor with the corresponding probes extending downward into the stator, but the transducers and probes may be positioned in other locations, as may be necessary or convenient in alternative embodiments.
- FIGURE 4A a diagram illustrating the structure of a
- sensor 400 includes three primary components: a probe 410, a transducer 420, and processing circuitry 430.
- Probe 410 is an elongated metal rod or wire.
- the probe may, for example, have a diameter of less than one millimeter, and a length of 10m or longer.
- the probe is preferably made of a ferromagnetic metal alloy, such as Ni-Fe.
- the probe may alternatively be made of materials such as elements in Group IVB of the periodic table of elements (such as titanium), Group VIIB (such as rhenium), and Group VIIIB (such as iron, nickel, rhodium).
- Still other materials including magnetic alloys such as Remendur (an iron alloy) and Vicalloy (a vanadium- iron-cobalt alloy), stainless steel, nickel alloys, thoriated tungsten may also be used for the probe.
- the probe need not be straight, and may be conformed to complex surface to measure temperatures at locations that are not co-linear.
- a proximal end 413 of probe 410 extends into the housing 425 of transducer 420.
- a coil 421 is positioned around the proximal end of probe 410, with the probe along the axis 424 of the coil.
- a magnet 422 is positioned outside coil 421 adjacent to a first side of the coil.
- the "inside” or “interior” of the coil refers to the generally cylindrical volume between the turns of the coil and centered on axis 424, while the “outside” or “exterior” of the coil refers to the remaining volume, which generally surrounds the coil and excludes the cylindrical interior volume.
- the coil is coupled through a connector 423 to processing circuitry 430.
- Processing circuitry 430 is configured to generate an electrical signal that is applied to coil 421.
- the signal may, for example, be a pulse, a square wave, or any other suitable waveform.
- the electrical signal passes through coil 421, it causes magnetic fields to be generated around the wires of the coil. These changing magnetic fields cause the metal at the end of probe 410 within transducer 420 to expand and contract, which sends an acoustic wave through the probe, from the transducer to the opposite end of the probe.
- Processing circuitry 430 is also configured to measure signals generated by reflections of the acoustic wave.
- Probe 410 has a plurality of notches (e.g., 411, 412) or other types of structures that produce reflections in the probe. As the acoustic wave reaches each notch, a reflection is created in the probe. This reflection is a smaller acoustic wave that travels back toward the transducer. Consequently, there is a reflected wave corresponding to each of the notches. There is also a reflected wave that is created when the original acoustic wave reaches the distal end 414 of the probe.
- notches e.g., 411, 412
- circuitry 430 When a reflected acoustic wave returns to the transducer, a current is induced in coil 421.
- the current in coil 421 is sensed by circuitry 430, which interprets fluctuations in the current and identifies the reflected waves. Circuitry 430 determines the timing of the reflected waves and uses this information to determine the temperature(s) of the probe.
- circuitry 430 may be configured to determine the temperature of the probe between each successive pair of notches, so a single sensor can be used to determine the temperature at particular locations, and can also map the
- the speed at which each of the waves travels through the probe is dependent upon the temperature of the probe, as well as the specific material of the probe. Since the material of the probe and the geometry of the probe (specifically distance between the transducer and each of the notches) are known, the temperature of the probe can be determined from the time that elapses between the instantiation of the original acoustic and the return of the reflected waves. [0040] As noted above, the choice of the material for the probe affects the
- the material preferably has strong magneto strictive characteristics, resistance to corrosion from materials which will be in contact with the probe, and appropriate mechanical characteristics, such as hardness, strength, thermal expansion coefficient, etc.
- the notches (or other structures) of the probes may have varying shapes (e.g., rectangular, rounded, or V-notches), varying depths, and varying surface finishes, each of which may affect the manner in which the acoustic wave is reflected from the structure back to the transducer.
- the notches may be formed using any suitable fabrication technique, including laser or EDM techniques.
- the probe may use stress points to create reflections in the probe.
- points at which probe segments are welded together can cause reflections of acoustic waves as they propagate through the probe.
- a choice of ferromagnetic materials for the probe allows it to be inserted in the body of the stator without substantially affecting the magnetic properties and performance of the stator.
- FIGURES 4B-4G a set of diagrams illustrating the structures of alternative magneto strictive transducers and probes are shown.
- FIGURES 4B-4D depict sensors in which the magneto strictive transducers utilize combinations of magnetic coils and magnets to generate acoustic waves in the probe.
- FIGURES 4E-4G depict sensors in which the magneto strictive transducers utilize one or more magnetic coils to generate acoustic waves in the probe without the use of a separate magnet.
- the elimination of the magnet in these embodiments may allow the transducer to be more compact, which in turn allows the magneto strictive sensor to be more easily incorporated into the design of an ESP motor or other downhole equipment.
- transducer 420 has a pair of magnets 422 that are positioned on opposite sides of coil 421.
- Probe 410 is positioned coaxially in the center of coil 421.
- probe 410 has rectangular notches 411, 412 in one side of the probe, instead of the triangular notches shown in FIGURE 4A.
- transducer 420 has a magnet 422 that is positioned within coil 421.
- probe 410 has rectangular notches 411, 412, but the notches extend all the way around the circumference of the probe.
- transducer 420 has coil 421 embedded in magnet 422.
- probe 410 has triangular notches 411, 412.
- coil 421 is positioned coaxially with probe 410 within housing 425.
- a spool or spacer (426) may be used to support coil 421 within housing 425.
- This type of spacer may also be used in embodiments that employ magnets in addition to coils. The spacers are not necessary in all embodiments.
- FIGURE 4E uses a single coil (421) that is adjustable between a few mm and tens of mm long.
- the length of the coil may be optimized to increase the strength of the acoustic wave that is generated in probe 410 when an electrical signal is applied to the coil. If the length of the coil is too short, there may be insufficient interaction between the magnetic fields of the coil with the probe to generate a strong acoustic wave. The more out-of-phase the components are, the less the components tend to be additive, and the weaker the acoustic wave will be.
- transducer 420 that uses two oppositely- wound coils is shown.
- coil 421 is wrapped in a first circumferential direction (e.g., left-handed helix).
- Coil 430 is wrapped in the opposite circumferential direction (e.g., in a right-handed helix). Coils 421 and 430 are connected in series, with one end of each coil connected to the other.
- Coil 421 is supported by a spool 426 within a first housing 425.
- Coil 430 is supported by spool 427 within a second housing 431.
- the axial component of the magnetic field generated by coil 430 is opposite that of coil 421, it generates an acoustic wave component in probe that is 180 degrees out of phase with the acoustic wave component generated by coil 421, but is axially displaced from the acoustic wave component generated by coil 421.
- the axial displacement of the respective acoustic wave components is equal to the axial displacement of the two coils.
- the coils are therefore positioned so that the excited acoustic waves of coil 421 and 430 are in phase, resulting in increased strength of the overall acoustic wave generated by the pair of coils.
- the two coils are less than 10mm long, and the axial separation between them is adjustable.
- FIGURE 4G a third embodiment of transducer 420 is shown.
- two oppositely wound coils (421, 430) are used.
- Coils 421 and 430 are approximately the same size used in the embodiment of FIGURE 4E.
- the coils are positioned end-to-end, with a common spool or spacer 426 supporting the coils.
- the axial dimension of the spacer is calculated to ensure the excited acoustic waves of coil 421 and 430 are in phase.
- FIGURES 5A-5D four functional block diagrams illustrating various possible configurations of multiple-coil transducers are shown.
- the coils are identified as either "+” coils or "-" coils.
- a "+” coil is wound in a first direction
- a "-" coil is wound in an opposite direction.
- the "+" coil is wound in a right-handed fashion
- the "-" coil is wound in a left-handed fashion.
- a magneto strictive sensor includes a transducer 510 and a probe 520.
- Transducer 510 has two coils, 511 and 512.
- Coil 511 is a "+" coil that is wound in a first direction
- coil 512 is a "-" coil that is wound in the opposite direction.
- Coils 511 and 512 are axially displaced by an amount that places them a half-period ( ⁇ ) apart in the phase domain, as described above. Because coils 511 and 512 are oppositely wound, the acoustic wave components induced by these coils in probe 520 are in phase and are thereby additive.
- transducer 510 includes three coils, 511, 512 and 513. Coils 511 and 513 are "+" coils, while coil 512 is a "-" coil. Each successive one of coils 511-513 is axially displaced by an amount equal to a half-period ( ⁇ ) in the phase domain. As a result, the acoustic wave components induced in probe 520 by each of coils 511-513 are in phase. These components are thereby additive.
- Each of the embodiments of FIGURES 5C and 5D uses a set of four coils (511-514) in transducer 510.
- two of the coils are "+” coils, and two are "-" coils.
- the "+" coils and "-" coils alternate.
- Each successive coil is axially displaced by an amount equal to a half-period ( ⁇ ) in the phase domain, so that the acoustic wave components induced in probe 520 by each of coils 511-514 are in phase, and are thereby additive.
- each of the "+” coils is axially spaced by a multiple of ⁇ so that they are in phase with each other.
- each of the "-” coils is axially spaced by a multiple of 2 ⁇ in the phase domain so that they are in phase with each other.
- the "+” coils are shifted with respect to the "-” coils by ⁇ in the phase domain so that the acoustic wave components of the "+” coils are in phase with the acoustic wave components of the "-” coils.
- the various embodiments of the magnetostrictive transducer described above use from one to four coils to induce an acoustic wave in the probe. It should be noted that the embodiments of the present invention are not limited to four coils - more coils may be used. As a practical matter, however, additional coils require additional space, so it may be desirable to use the minimum number of coils that provide the desired signal strength.
- FIGURE 6 a diagram illustrating the effect of temperature on a reflected pulse is shown.
- FIGURE 6 depicts a plot of a reflected wave.
- Each of the four different waveforms in the figure represents the wave reflected from the same notch in the probe of the magnetostrictive sensor.
- Each of the waveforms corresponds to a different temperature (Tn).
- Temperatures T1-T4 may correspond, for example, to temperatures of 50°C, 100°C, 150°C, and 200°C, respectively.
- the reflected wave is depicted by the dashed line.
- This waveform has a peak at time t2.
- t2-t0 time shift
- the interval t2-t0 is greater than the interval tl-tO.
- T3 and T4 behave similarly. Since T3 is greater than Tl and T2, the acoustic wave travels through the probe more slowly than in the case of temperatures Tl and T2, and the reflected wave does not return to the transducer until time t3. Likewise, T4 is greater than Tl, T2 and T3, so the acoustic wave travels through the probe more slowly than in the case of temperatures Tl, T2 and T3, and the reflected wave does not return to the transducer until time t4.
- Different signal analysis algorithms may be developed for optimal accuracy in determining these time readings.
- the probe may have multiple notches, each of which causes a separate reflected wave to be created.
- the paths of the waves through the probe are the same, except for the portion of the probe between the notches. Consequently, the timing difference between the corresponding reflected waves is essentially a linear function of temperature change at the portion of the probe between the notches.
- the transducer can therefore sense the successive reflected waves, determine the timing differences between them, and compute the temperature of each successive portion of the probe.
- the transducers of the sensors may vary from the configuration depicted in FIGURES 4A-4D.
- the material of the transducer may be selected from a variety of materials that are suitable for the particular application in which it will be implemented.
- the design of the transducer may affect the sensitivity of the transducer to reflected acoustic waves and may therefore affect the effective range of the probe and notches therein.
- the design of the transducer may also affect the signal quality and/or signal-to-noise ratio of the signals generated from the reflected acoustic waves.
- the circuitry coupled to the transducers of the sensors may use any of a variety of suitable algorithms for sensing, identifying and determining the timing of the reflected acoustic waves. Likewise, any suitable algorithm may be used to determine the temperature(s) of the probe from the sensed timing of the reflected waves.
- the circuitry may be configured to collect baseline or reference data, and may take steps to remove background noise or interference.
- the magneto strictive sensors may be positioned in other locations, the transducers may utilize different configurations, the probes may have different dimensions, etc.
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- Physics & Mathematics (AREA)
- Engineering & Computer Science (AREA)
- Mining & Mineral Resources (AREA)
- Life Sciences & Earth Sciences (AREA)
- Geology (AREA)
- General Physics & Mathematics (AREA)
- Fluid Mechanics (AREA)
- Environmental & Geological Engineering (AREA)
- General Life Sciences & Earth Sciences (AREA)
- Geochemistry & Mineralogy (AREA)
- Geophysics (AREA)
- Acoustics & Sound (AREA)
- Microelectronics & Electronic Packaging (AREA)
- Power Engineering (AREA)
- Measuring Temperature Or Quantity Of Heat (AREA)
Abstract
Description
Claims
Priority Applications (3)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CA2946393A CA2946393C (en) | 2013-10-04 | 2014-11-17 | Systems and methods for monitoring temperature using a magnetostrictive probe |
| AU2014392615A AU2014392615B2 (en) | 2013-10-04 | 2014-11-17 | Systems and methods for monitoring temperature using a magnetostrictive probe |
| GB1619416.9A GB2545330B (en) | 2013-10-04 | 2014-11-17 | Systems and methods for monitoring temperature using a magnetostrictive probe |
Applications Claiming Priority (3)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US201361887191P | 2013-10-04 | 2013-10-04 | |
| US14/267,255 US9702243B2 (en) | 2013-10-04 | 2014-05-01 | Systems and methods for monitoring temperature using a magnetostrictive probe |
| US14/267,255 | 2014-05-01 |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2015167612A1 true WO2015167612A1 (en) | 2015-11-05 |
Family
ID=52776926
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/US2014/065951 Ceased WO2015167612A1 (en) | 2013-10-04 | 2014-11-17 | Systems and methods for monitoring temperature using a magnetostrictive probe |
Country Status (5)
| Country | Link |
|---|---|
| US (1) | US9702243B2 (en) |
| AU (1) | AU2014392615B2 (en) |
| CA (1) | CA2946393C (en) |
| GB (1) | GB2545330B (en) |
| WO (1) | WO2015167612A1 (en) |
Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US10007016B2 (en) | 2015-03-03 | 2018-06-26 | Baker Hughes, A Ge Company, Llc | Downhole closed-loop magnetostrictive sensing element for downhole applications |
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| US9196387B2 (en) * | 2011-11-03 | 2015-11-24 | Atomic Energy Of Canada Limited | Apparatus and method for detecting position of annulus spacer between concentric tubes |
| US9753171B2 (en) | 2014-10-15 | 2017-09-05 | Baker Hughes Incorporated | Formation collapse sensor and related methods |
| US20170170702A1 (en) * | 2015-12-10 | 2017-06-15 | Baker Hughes Incorporated | Systems and methods to seal a rotor or stator of electromechanical motors or generators |
| FR3048081A1 (en) * | 2016-02-24 | 2017-08-25 | Univ D'artois | THERMAL FLUXMETER |
| BR112018077284A2 (en) * | 2016-06-30 | 2019-04-02 | Schlumberger Technology B.V. | rod proximity sensors |
| CN109540266B (en) * | 2019-01-17 | 2023-11-07 | 北京锐达仪表有限公司 | Magnetostrictive liquid level meter and liquid level measurement method |
| CN111089660B (en) * | 2020-01-03 | 2024-03-22 | 河北工业大学 | Absolute ultrasonic magnetostrictive temperature sensor |
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Also Published As
| Publication number | Publication date |
|---|---|
| GB2545330B (en) | 2020-10-21 |
| AU2014392615B2 (en) | 2017-07-06 |
| US20150098488A1 (en) | 2015-04-09 |
| CA2946393C (en) | 2018-11-06 |
| GB2545330A (en) | 2017-06-14 |
| AU2014392615A1 (en) | 2016-11-24 |
| US9702243B2 (en) | 2017-07-11 |
| CA2946393A1 (en) | 2015-11-05 |
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