WO2010086238A1 - Method and device for measuring the thickness of any deposit of material on an inner wall of a structure - Google Patents
Method and device for measuring the thickness of any deposit of material on an inner wall of a structure Download PDFInfo
- Publication number
- WO2010086238A1 WO2010086238A1 PCT/EP2010/050464 EP2010050464W WO2010086238A1 WO 2010086238 A1 WO2010086238 A1 WO 2010086238A1 EP 2010050464 W EP2010050464 W EP 2010050464W WO 2010086238 A1 WO2010086238 A1 WO 2010086238A1
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- WIPO (PCT)
- Prior art keywords
- vibrations
- resonance frequency
- determining
- deposit
- thickness
- 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
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01B—MEASURING LENGTH, THICKNESS OR SIMILAR LINEAR DIMENSIONS; MEASURING ANGLES; MEASURING AREAS; MEASURING IRREGULARITIES OF SURFACES OR CONTOURS
- G01B7/00—Measuring arrangements characterised by the use of electric or magnetic techniques
- G01B7/02—Measuring arrangements characterised by the use of electric or magnetic techniques for measuring length, width or thickness
- G01B7/06—Measuring arrangements characterised by the use of electric or magnetic techniques for measuring length, width or thickness for measuring thickness
- G01B7/063—Measuring arrangements characterised by the use of electric or magnetic techniques for measuring length, width or thickness for measuring thickness using piezoelectric resonators
- G01B7/066—Measuring arrangements characterised by the use of electric or magnetic techniques for measuring length, width or thickness for measuring thickness using piezoelectric resonators for measuring thickness of coating
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N29/00—Investigating or analysing materials by the use of ultrasonic, sonic or infrasonic waves; Visualisation of the interior of objects by transmitting ultrasonic or sonic waves through the object
- G01N29/04—Analysing solids
- G01N29/12—Analysing solids by measuring frequency or resonance of acoustic waves
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01H—MEASUREMENT OF MECHANICAL VIBRATIONS OR ULTRASONIC, SONIC OR INFRASONIC WAVES
- G01H13/00—Measuring resonant frequency
Definitions
- the present invention relates to a method of measuring the thickness of any deposit of material on an inner wall of a structure, for instance an oil pipeline.
- the present invention also relates to a corresponding device or system.
- Wax deposition at the inner wall of oil pipelines is a severe problem in today's oil production infrastructure. When warm oil flows through a pipeline with cold walls, wax will precipitate and adhere to the walls. This in turn will reduce the pipeline's cross- sectional area, which without counter measures will lead to a loss of pressure and ultimately to a complete blockage of the pipeline.
- a method of measuring the thickness of a deposit of material on an inner wall of a structure comprising:
- a resonance or resonant frequency means here the lowest characteristic frequency of the structure and/or any of its overtones or harmonics.
- the lowest characteristic frequency of the structure may also be referred to as the eigen frequency of the system.
- the resonance frequency may also be approximately equal to the natural frequency of the structure.
- the present invention is based on the understanding that the resonance frequency of the structure will change as soon as for instance a wax layer starts forming on the inside of the structure. This change in resonance frequency is due to the changed total elasticity coefficient (vibration damping because of the viscous-elastic wax layer). Thus, measured resonance frequency can be correlated to wax layer thickness.
- the present method advantageously provides for low-cost, continuous wax thickness measurement, which in turn allows wax remediation techniques to be applied (just) in time.
- the vibrations in the structure may for instance be caused by means of a device adapted to give a mechanical impulse to the structure, e.g. like a hammer hitting the structure.
- the vibrations in the structure may be caused by means of a medium flowing inside structure.
- E.g. an irregular two-phase slug flow may exchange mechanical energy with the structure, setting the structure into vibration.
- the vibrations in the structure may be caused by changing the flow rate of a medium flowing inside the structure, in case the flow is not irregular enough.
- the vibrations in the structure may be detected by means of a sensor mechanically connected to the structure, and also to a fixed (reference) point, for measuring the distance variation between the structure and the fixed point.
- the vibrations in the structure may be detected by means an optical detector. In this way, no mechanical contact is necessary.
- an accelerometer fixed to the outside of the structure may be used.
- the resonance frequency used to determine the thickness of any deposit of material on the inner wall of the structure is the lowest characteristic frequency of the structure. This will give the highest accuracy.
- the method further comprises (e) predicting the thickness of any deposit of material at one or more portions of the structure remote from where the vibrations are detected using a material deposition model of the structure.
- the method further comprises performing the steps (a)-(d) for different portions of the structure, e.g. at several locations along the structure. Except for giving information about the exact deposition thickness at said locations, the information may beneficially be used to update in real-time the above mention material deposition model, to increase the accuracy of the model output.
- a resonance frequency of the structure is determined by determining the frequency at which the structure vibrates at a maximum amplitude.
- the thickness of any deposit of material on the inner wall of the structure is determined by comparing the (currently) determined resonance frequency with a previously determined resonance frequency of the structure, for which previously determined resonance frequency the thickness of any deposit of material on the inner wall of the structure is known.
- the previous resonance frequency may for instance be determined for a clean structure.
- said structure is a pipeline, for instance an oil pipeline.
- said material is wax.
- Wax may refer to solids that precipitate from fluids due to thermodynamically changes. These solids include solids typically dissolved in crude oil at well bore conditions such as asphaltenes, higher paraffins, hydrates, and inorganic and organic salts. The composition of the wax will depend on the origin of the fluid stream.
- the heating should keep the inner pipe wall above deposit appearance temperature, thus preventing deposition in the heated portion.
- the heating may for instance be achieved by electrical heating cables installed locally around the pipe.
- the steps performed in respect of the heated and unheated portions of the structure may be carried out using respective different measurement devices, such that the calibration may be carried out in real time, which increases the accuracy of the measurement.
- the present method may further comprise determining at least one of: (i) the amount of damping of the vibrations at the resonance frequency, i.e. how the amplitude of the resonance frequency decreases over time; (ii) the shift of the frequencies of the harmonics of the structure; and (iii) the amount of damping of the vibrations at the harmonics of the structure, based on the detected vibrations.
- Data resulting from at least one of (i)-(iii) may then be used to determine the elasticity modulus (both the real and the imaginary component) of any deposit of material on the inner wall of the structure. For instance, the amount of damping for each harmonic frequency will differ depending on the elasticity modulus. Determining the elasticity modulus of the deposit of material on the inner wall of the structure is beneficial in that it allows establishing what kind of material the deposit is made of.
- a method of determining the stiffness of a material deposited on an inner wall of a structure comprising: detecting vibrations in the structure; determining a resonance frequency or frequencies of the structure based upon the detected vibrations; and determining a stiffness of a deposited material by observing changes in the resonance frequency/frequencies or resonance amplitude/s over time
- apparatus for measuring the thickness of a deposit of material on the an inner wall of a structure, the apparatus comprising: a sensor placeable on the outside of the structure for detecting vibrations in the structure; a signal processor for determining a resonance frequency of the structure based on the vibrations detected by the sensor means; and an analyser for determining the thickness of a deposit of material on the inner wall of the structure based on the resonance frequency determined by said signal processor.
- apparatus for determining the stiffness of a material deposited on an inner wall of a structure, the apparatus comprising: a sensor for detecting vibrations in the structure; a signal processor for determining a resonance frequency or frequencies of the structure based upon the detected vibrations; and an analyser for determining a stiffness of a deposited material by observing changes in the resonance frequency/frequencies or resonance amplitude/s over time.
- the apparatus of the above third or fourth aspect of the invention may further comprise a device adapted to give a mechanical impulse to the structure.
- Fig. 1 is a schematic view of a device according to an embodiment of the present invention.
- Fig. 2 is a flow chart of a method according to an embodiment of the present invention.
- Fig. 3 is an exemplary x-y (deposit thickness vs. resonance frequency) type chart.
- Fig. 4 is an exemplary x-y (Young modulus vs. resonance frequency) type chart.
- Fig. 5 is a schematic view of a device according to another embodiment of the present invention.
- Fig. 6 is a schematic view of an arrangement comprising a pipeline and several measurement devices of the present invention.
- Fig. 7 is a schematic view of an arrangement comprising a pipeline and two measurement devices according to a further embodiment of the present invention.
- Figure 8 is a flow diagram illustrating a method of determining the thickness of a deposit and of determining the stiffness of the deposit material.
- Fig. 1 is a schematic view of a device for measuring the thickness of a deposit of material on an inner wall of a structure according to an embodiment of the present invention.
- the device of fig. 1. is a measurement device 10 adapted to measure the wax layer thickness on the inside wall 12 of a pipe or pipeline 14 for transportation of oil 16.
- the pipeline 14 may for instance be made of steel tubes.
- the measurement device 10 comprises a device 18 adapted to give a mechanical impulse to the pipeline 14.
- the device 18 may for example function like a hammer.
- the device 18 is placeable on the outside of the pipeline 14.
- the measurement device 10 further comprises a sensor or detector 20 also placeable on the outside of the pipeline 14.
- the sensor 20 is adapted to detect vibrations, and convert the vibrations into corresponding electrical energy.
- the sensor 20 may for instance comprise a piezoelectric transducer (not shown).
- the device 18 and sensor 20 are both mechanically coupled to an outer surface 22 of the pipeline 14 at a particular portion of the pipeline 14, either directly or through some conveying means (not shown). Further, the generator 18 and sensor 20 are placed next to or near each other, preferably on the same side of the pipeline 14, as illustrated.
- the measurement device 10 further comprises a first determiner 24 connected to the sensor 20.
- the first determiner 24 is adapted to determine a resonance frequency of the pipeline 14 based on vibrations detected by the sensor 20.
- the measurement device 10 further comprises a second determiner 26 connected to the first determiner 24.
- the second determiner 26 is adapted to determine the thickness of any wax layer 28 deposited on the inside 12 of the pipeline 14 based on the resonance frequency determined by the first determiner 24.
- first and second determiners 24, 26 may be realized by a single unit 30, e.g. a computer device. Such a unit can also be used to control the device 18.
- step (a) the device 18 is initially excited so as to give a mechanical impulse to the pipeline 14, causing vibrations in the pipeline.
- the pipeline 14 is excited with an impulsive function like the strike by the device 18, the pipeline 14 initially vibrates at all the frequencies present in the impulse (an impulsive function theoretically contains 'all' frequencies). However all frequencies except the eigen frequency and its overtones will be damped quickly, so after a very short time after the impulse, the vibration will consist mainly of the resonant frequencies.
- the vibrations generated in the pipeline are then detected by the sensor 20 in step (b).
- the sensor 20 converts the detected vibrations into corresponding electrical energy, and records the vibration signal over a certain time period.
- the first determiner 24 determines a resonance frequency of the pipeline 14 including any wax deposits in step (c).
- the first determiner 24 may for instance transform the detected vibrations via FFT (fast Fourier transform) into the frequency domain and plot the output in a x-y (frequency vs. amplitude) type chart, and observe the spike(s) that occur. Each spike is a resonance or resonant frequency of the pipeline 14.
- the second determiner 26 may for instance use a x-y (deposit thickness vs. resonance frequency) type chart for the particular portion of the pipeline 14 and input the current resonance frequency (e.g. the first overtone) to determine the current deposit thickness.
- a x-y (deposit thickness vs. resonance frequency) type chart for the particular portion of the pipeline 14 and input the current resonance frequency (e.g. the first overtone) to determine the current deposit thickness.
- An example of such a chart is shown in fig. 3.
- the chart may be prepared by first using FEM (finite element method) to determine the eigen frequencies of a clean pipeline for the pipeline geometry at the particular portion of the pipeline 14. Then, a layer (deposit) is added inside the clean pipeline, and the eigen frequencies are calculated again.
- these FEM calculations may take into account also the pipeline's surrounding, that means whether the pipeline 14 is suspended in free water, or if it is lying on the sea ground or if it is half-buried in the sea-bed.
- the determined thickness may be presented to an operator in a variety of ways (e.g. by means of a display, not shown), as appreciated by the skilled person, and/or be entered into some other system for further processing, etc.
- the above described method is continuously repeated, as indicated by the optional dashed line 32 in fig. 2, in order to provide a real-time measure of any wax layer deposition thickness.
- the type of deposition may also be determined, e.g. by means of the second determiner 26.
- changing the deposit's Young modulus (i.e. its stiffness) shifts also the eigen frequency, but the shift is different for the different overtones, see fig. 4.
- the shift of the third overtone with respect to stiffness of the deposit is indeed greater than the corresponding shift of e.g. the first overtone.
- the first overtone does not vary significantly with respect to the stiffness of the deposit. Therefore, preferably the first overtone, or more preferably the lowest characteristic resonant frequency of the structure, is used to determine the deposit's thickness.
- the shift in frequency of a higher overtone (e.g. the third overtone) in combination with the determined thickness may preferably be used to determine the Young modulus or hardness of the present deposit.
- the shift due to thickness as determined from the first overtone may be deducted from the shift of the third overtone, whereby the hardness of the deposit may be determined from the remaining shift of the third overtone.
- the hardness may then be used to determine whether the deposit consists mostly of scale which is stiff or wax which is elastic. Charts (like the chart in fig. 4) may be prepared from FEM by doing calculations for several cases with the same deposit thickness but changing the deposit's elasticity modulus each time.
- the first determiner 24 may also be adapted to determine at least one of: (i) the amount of damping of the vibrations at the resonance frequency, i.e. how the amplitude of the resonance frequency decreases over time; (ii) the shift of the frequencies of the harmonics of the structure as the deposition thickness is increased, and (iii) the amount of damping of the vibrations at the harmonics of the structure, based on the detected vibrations.
- the second determiner 26 may also be adapted to determine the elasticity modulus, both the real and the imaginary component, of any deposit of material on the inside of the structure based on data resulting from at least one of (i)- (iii). For instance, the amount of damping for each harmonic frequency will differ depending on the elasticity modulus.
- the determiner 26 may utilize a prepared look-up table including different amounts of damping of each harmonic frequency for a given pipeline geometry for a set of elasticity modulus. Based on the currently detected amount of damping of each harmonic frequency, the current elasticity modulus of the deposit may be retrieved. And based on the current elasticity modulus, the kind of deposit may then be determined, at least roughly, like above. For instance, wax is a viscoelastic medium, while scale (precipitated salt) is a comparatively stiff and hard medium. A deposit of equal thickness of these two will show a completely different amount of damping of the vibrations at the harmonics.
- a measurement device as illustrated in fig. 5 will now be described.
- the measurement device 10 of fig. 5 is similar to that of fig. 1 , but the device 18 may be omitted. Instead, the vibrations in the pipeline 14 may be caused by the medium 16 flowing inside the pipeline 14. If the flow is irregular, as in most real production flows, e.g. a two-phase slug flow, it will exchange mechanical energy with the pipe structure 14, setting it into vibration. Alternatively, if the flow is not regular enough, shock waves may be introduced in the flow, e.g. by increasing the flow rate suddenly by a certain percentage. Such shock waves will transverse through the pipeline 14 and introduce vibrations in the pipeline 14 that may be detected.
- the present method using a single measurement device as described above provides a point measurement.
- the exact knowledge of wax thickness at one point makes it possible to adjust in real-time an existing wax deposition model of the pipeline so that a prediction (optional step (e) in fig. 2) of the wax layer also in a wide distance from the measurement point is possible with very high accuracy. It should generally be sufficient to have a measurement at a few critical points (e.g. tie-in of new wells, junctions, etc.) to cover the complete pipeline.
- Exemplary wax deposition models that may be used in conjunction with the present invention are disclosed in the publication "Simulating Wax Deposition in Pipelines for Flow Assurance”; Beryl Edmonds, Tony Moorwood, Richard Szczepanski, and Xiaohong Zhang; Energy Fuels, 2008, 22 (2), 729-741.
- a central processing means 34 e.g. a computer device
- central processing means 34 is adapted to receive local wax layer thickness data from the measurement devices 10.
- the received local data may be used by the processing means 34 to predict the wax layer thickness at location remote from where the measurement devices 10 are located, using a wax deposition model of the pipeline 14, as well as to update the present wax deposition model of the pipeline.
- the arrangement of fig. 6 could also be used without the wax deposition model.
- the output is a plurality of point measurements, one at the position of each measurement device.
- Fig. 7 is a schematic view of an arrangement according to yet another embodiment of the present invention, wherein two measurement devices 10a, 10b are arranged at different locations along the pipeline 14.
- the devices 10a, 10b are basically of the same type as the device 10 described above, though the determiners 24 and 26 may be omitted in device 10a.
- a heater 36 At the portion of the pipeline 14 where the device 10a is arranged, there is also provided a heater 36.
- the heater 36 is adapted to heat the inner wall of said portion of the pipeline 14 to a temperature above wax appearance temperature, thus preventing deposition in the heated portion.
- the heater 36 may for instance be electrical heating cables installed locally around the outside of the pipeline 14.
- the device 10b is on the other hand arranged at a non-heated portion of the pipeline 14, as illustrated.
- the device 10a and the heater 36 may be placed upstream or downstream of the device 10b.
- the device 10a Upon operation, the device 10a carries out the above steps (a)-(b) for the heated portion of the pipeline 14. At the same time, the device 10b carries out the above steps (a)-(d) for the non-heated portions, but additionally using data resulting from the operation of device 10a as calibration data. For instance, vibrations detected by the device 10a may be subtracted from the vibrations detected by the device 10b when determining the resonance frequency, optionally already in the time domain before a FFT for determining the dominant frequencies of the vibrations is applied. In this way, the device 10b may determine the deposit thickness taking into account vibrations in the pipeline 14 caused by the flow in the pipeline 14.
- Figure 8 illustrates in general terms a method of determining the thickness of a material deposited on an inner surface of a structure such as a pipeline.
- heat is applied to a portion of the structure.
- vibrations are detected at that heated portion. This data provides calibration data indicative of the vibrations present where no deposit exists.
- vibrations are detected at an unheated portion, i.e. at a portion of the structure where a deposit is formed.
- these vibrations are analysed and a resonance frequency (or frequencies) determined.
- changes in the resonance frequency (or frequencies) with time may be monitored, and used to determine a material thickness, steps 800 and 900.
- the thickness of the deposit is determined.
- the result is calibrated at step 600.
- the result is output at step 700.
- the present invention is applicable to all kinds of structures or containers conducting hydrocarbon streams, which hydrocarbon streams comprise components that possibly deposit on the container wall, e.g. wax.
- the first and second determiners 24, 26 of each device 10 may be centralized to the processing means 34.
- the vibrations in the pipeline 14 may be detected by means an optical detector or an accelerometer.
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- Acoustics & Sound (AREA)
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Abstract
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Priority Applications (9)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| AU2010209894A AU2010209894B2 (en) | 2009-01-30 | 2010-01-15 | Method and device for measuring the thickness of any deposit of material on an inner wall of a structure |
| CA2750307A CA2750307A1 (en) | 2009-01-30 | 2010-01-15 | Method and device for measuring the thickness of any deposit of material on an inner wall of a structure |
| DE112010000719T DE112010000719T5 (en) | 2009-01-30 | 2010-01-15 | Method and apparatus for measuring the thickness of any material deposit on an interior wall of a structure |
| MX2011007904A MX2011007904A (en) | 2009-01-30 | 2010-01-15 | Method and device for measuring the thickness of any deposit of material on an inner wall of a structure. |
| RU2011135964/28A RU2521149C2 (en) | 2009-01-30 | 2010-01-15 | Method and device to measure thickness of any material deposits on inner structure wall |
| BRPI1007306A BRPI1007306A2 (en) | 2009-01-30 | 2010-01-15 | methods and apparatus for measuring the thickness of a material deposit on an inner wall of a structure, and for determining the stiffness of a material deposited on an inner wall of a structure |
| US13/146,950 US8966979B2 (en) | 2009-01-30 | 2010-01-15 | Method and device for measuring the thickness of any deposit of material on an inner wall of a structure |
| GB1111953.4A GB2478684B (en) | 2009-01-30 | 2011-01-19 | Method and device for measuring the thickness of any deposit of material on an inner wall of a structure |
| NO20111171A NO20111171A1 (en) | 2009-01-30 | 2011-08-29 | Method and apparatus for measuring the thickness of any deposits of material on the interior wall of a structure |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| NO20090483 | 2009-01-30 | ||
| NO20090483A NO334481B1 (en) | 2009-01-30 | 2009-01-30 | Method and apparatus for measuring the thickness of a material deposit on an inner wall of a pipe structure |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2010086238A1 true WO2010086238A1 (en) | 2010-08-05 |
Family
ID=41822472
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/EP2010/050464 Ceased WO2010086238A1 (en) | 2009-01-30 | 2010-01-15 | Method and device for measuring the thickness of any deposit of material on an inner wall of a structure |
Country Status (10)
| Country | Link |
|---|---|
| US (1) | US8966979B2 (en) |
| AU (1) | AU2010209894B2 (en) |
| BR (1) | BRPI1007306A2 (en) |
| CA (1) | CA2750307A1 (en) |
| DE (1) | DE112010000719T5 (en) |
| GB (1) | GB2478684B (en) |
| MX (1) | MX2011007904A (en) |
| NO (2) | NO334481B1 (en) |
| RU (1) | RU2521149C2 (en) |
| WO (1) | WO2010086238A1 (en) |
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- 2010-01-15 US US13/146,950 patent/US8966979B2/en not_active Expired - Fee Related
- 2010-01-15 BR BRPI1007306A patent/BRPI1007306A2/en not_active IP Right Cessation
- 2010-01-15 AU AU2010209894A patent/AU2010209894B2/en not_active Ceased
- 2010-01-15 CA CA2750307A patent/CA2750307A1/en not_active Abandoned
- 2010-01-15 MX MX2011007904A patent/MX2011007904A/en active IP Right Grant
- 2010-01-15 RU RU2011135964/28A patent/RU2521149C2/en not_active IP Right Cessation
- 2010-01-15 DE DE112010000719T patent/DE112010000719T5/en not_active Withdrawn
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2011
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| CN104011529A (en) * | 2011-12-22 | 2014-08-27 | 亚什兰许可和知识产权有限公司 | Device and method for detecting deposits |
| RU2487343C1 (en) * | 2012-03-01 | 2013-07-10 | федеральное государственное бюджетное образовательное учреждение высшего профессионального образования "Национальный исследовательский университет "МЭИ" (ФГБОУ ВПО "НИУ МЭИ") | Determination of deposition thickness at inner side of pipes by eddy current method and device for its implementation |
| FR3001162A1 (en) * | 2013-01-24 | 2014-07-25 | Total Sa | METHOD OF INTERVENTION ON UNDERWATER PIPELINES |
| WO2014114887A1 (en) | 2013-01-24 | 2014-07-31 | Total Sa | Method for performing work on underwater pipes |
| US9597715B2 (en) | 2013-01-24 | 2017-03-21 | Total Sa | Method for performing work on underwater pipes |
| AU2014209008B2 (en) * | 2013-01-24 | 2018-03-08 | Total Sa | Method for performing work on underwater pipes |
| CN109060962A (en) * | 2018-08-14 | 2018-12-21 | 中国石油大学(北京) | Test the device of different height sedimentary relative hardness and its application in crude oil storage tank |
| CN109060962B (en) * | 2018-08-14 | 2020-10-27 | 中国石油大学(北京) | Device for testing relative hardness of settled layers with different heights in crude oil storage tank and application thereof |
| RU2697936C1 (en) * | 2018-12-04 | 2019-08-21 | федеральное государственное бюджетное образовательное учреждение высшего образования "Национальный исследовательский университет "МЭИ" (ФГБОУ ВО "НИУ "МЭИ") | Device for determination of magnetic conductivity of magnetic deposits on surface of pipes by eddy-current method |
| RU2713031C1 (en) * | 2019-05-27 | 2020-02-03 | федеральное государственное бюджетное образовательное учреждение высшего образования "Национальный исследовательский университет "МЭИ" (ФГБОУ ВО "НИУ "МЭИ") | Device for determining the degree of inhomogeneity of the electrical conductivity of non-magnetic metals by the eddy current method |
| RU2781414C1 (en) * | 2022-05-23 | 2022-10-11 | федеральное государственное бюджетное образовательное учреждение высшего образования "Самарский государственный технический университет" | Method for determining the thickness of deposits on the inner wall of pipelines and process equipment |
Also Published As
| Publication number | Publication date |
|---|---|
| US8966979B2 (en) | 2015-03-03 |
| NO334481B1 (en) | 2014-03-17 |
| RU2521149C2 (en) | 2014-06-27 |
| RU2011135964A (en) | 2013-03-10 |
| AU2010209894B2 (en) | 2014-09-04 |
| NO20111171A1 (en) | 2011-10-27 |
| CA2750307A1 (en) | 2010-08-05 |
| BRPI1007306A2 (en) | 2016-02-10 |
| GB201111953D0 (en) | 2011-08-24 |
| GB2478684A (en) | 2011-09-14 |
| NO20090483L (en) | 2010-08-02 |
| US20110303012A1 (en) | 2011-12-15 |
| DE112010000719T5 (en) | 2012-07-05 |
| MX2011007904A (en) | 2011-10-12 |
| GB2478684B (en) | 2013-01-23 |
| AU2010209894A1 (en) | 2011-08-18 |
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