Detector for variation in the speed of an electrically conductive fluid flow, comprising an electromagnetic transducer.
The detector addresses the challenges of measuring high-speed, dense electrically conductive fluids by using an electromagnetic transducer with an envelope detector circuit, enabling efficient signal processing and accurate speed measurement across a broad range of conditions.
Patent Information
- Application Number
- FR2023014457
- Authority / Receiving Office
- FR · FR
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2023-12-19
- Publication Date
- 2025-06-20
- Estimated Expiration
- 2043-12-19
AI Technical Summary
Existing velocimetry techniques for electrically conductive fluids, particularly dense liquid metals, face challenges in measuring high-speed flows and processing signals in complex, high-temperature environments.
A detector comprising an electromagnetic transducer with a cylindrical metal tube core and an envelope detector circuit connected to the receiving coil, capable of measuring variations in the speed of electrically conductive fluids using either a primary coil supplied with direct current or a permanent magnet.
The detector provides a simplified signal processing method, capable of measuring speed variations across a wide range of fluid densities and temperatures, with improved sensitivity and reduced complexity compared to existing devices.
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Abstract
Description
Title of the invention: Detector of variation in speed of a flow of electrically conductive fluid, comprising an electromagnetic transducer. Technical field
[0001] The present invention relates to the field of instrumentation and measurement, and more particularly that of transducers dedicated to local, point velocimetry of electrically conductive fluids.
[0002] The invention relates to a detector for variation in the speed of an electrically conductive fluid comprising an electromagnetic transducer.
[0003] The invention applies generally to any electrically conductive fluid. These fluids are, for example, electrically conductive ionic solutions such as salt water and, even more so, liquid metals. Usually, these metals are, for example, sodium, potassium, lead, lithium, aluminum, copper, iron, zinc, titanium and their alloys.
[0004] More particularly, the invention applies to measurements in fluids of the dense liquid type having a density in a range of the order of 100 kg.m3 to more than 1000 kg.m3.
[0005] The invention is particularly suitable for measuring the speeds of fluids whose melting temperature range is the melting temperature range of metals treated, shaped or used in liquid form, typically from approximately -50°C to more than 1500°C.
[0006] An advantageous application envisaged is the measurement of speeds of coolants, in particular of nuclear fission and fusion reactors. Prior art
[0007] In many applications, it is necessary to know the velocity field of a moving electrically conductive fluid.
[0008] This is the case in the metal foundry industry where knowledge of the velocity field in foundry molds and their feed circuits makes it possible to predict the quality of the parts produced and limit scrap. Knowledge of flow rates makes it possible to control and optimize the filling of foundry molds.
[0009] In the nuclear industry, the velocity field of the metal heat transfer fluids used in the circuits of certain nuclear reactors is a major factor in the stress on metal structures in contact. Therefore, its knowledge is essential.
[0010] It is also a major factor in the thermal exchanges existing in the heat exchangers and at the nuclear fuel level of these reactors.
[0011] Knowledge and analysis of the velocity field in the key locations of a reactor (heat exchangers, core outlet, pump, etc.) is also an indicator of proper operation and therefore a means of increasing safety and overall monitoring possibilities for these machines.
[0012] Scientific experiments using liquid metals in large volumes, as well as tests carried out with a view to understanding flow distributions in exchanger collectors, also require knowledge of the velocity field of the flows involved.
[0013] In the various flow zones mentioned, the flow conditions are three-dimensional. What also most often characterizes these flows is their temperature level, most often several hundred degrees, and the density of the fluids used, the range of which can extend from a few hundred kg.m3 to several thousand kg.m3.
[0014] Different velocimetry techniques are known and used to measure the velocity components of an electrically conductive liquid flow.
[0015] Among these, electromagnetic techniques are particularly relevant and robust, in terms of the resistance of the materials to the stresses applied to them by the environment in which the measurement must be carried out. These techniques are all the more interesting if it is a dense and chemically reactive fluid, such as liquid metals.
[0016] The operating principle of electromagnetic transducers is illustrated by the expression of Ohm's law in the moving fluid subjected to a magnetic field.
[0017] It shows that the conductivity o of the fluid causes the development of currents (electric current density J) under the action of the displacement speed u combined with the external magnetic field B:
[0018] [Equation 1]
[0019] X =
[0020] This occurs even in the absence of an electric field E.
[0021] The current densities Ju are the source of a magnetic field Bu. This field Bu distorts the external field B.
[0022] It is specified here that, for simplification, the vector symbolized by the letter B, which is the magnetic flux density or magnetic induction, is designated throughout the application under the name of magnetic field. It is also specified that the different formulations indicated below are written within the framework of the approximation of quasi-permanent regimes, making it possible to neglect certain quantities intervening in Maxwell's equations, such as displacement currents.
[0023] To date, measurements of a single velocity component of a flow are commonly carried out by electromagnetic transducers, commonly designated by the acronym DDF for "Flow Distortion Flow Meter", or the English acronym ECFM ("Eddy Current Flow Meter") or PSFM ("Phase Shift Flow Meter").
[0024] A conventional DDF, generally designated by the reference 1, is shown in Figures 1, 2 and 2A: it is axisymmetric with a central axis Z and typically consists of a core 2, an electric transmitting coil, called primary 3, and one or two electric receiving coils, called secondary 4, 5. The core 2 is formed of a solid rod 20 extending along the central axis Z and solid discs 21 regularly spaced along the central axis (X), the solid rod connecting the solid discs together. The primary 3 and secondary 4, 5 coils are wound around the solid rod 20 between two of the solid discs 21.
[0025] An alternating electric current is imposed in the primary coil. The circulation of this current creates an external magnetic field B in the environment close to the primary coil, according to the Maxwell - Ampere equation:
[0026] [Equation 2]
[0027] vx B = / / J
[0028] with:
[0029] V: differential operator
[0030] l1: magnetic permeability with ~
[0031] : magnetic permeability of vacuum
[0032] B: crosses the receiving coils.
[0033] The primary current is alternating, so that B is also alternating. In this way, B induces an electric voltage in each of the receiving coils, according to the Maxwell-Faraday equation:
[0034] [Equation 3]
[0035] xg _ to B
[0036] with:
[0037] E: electric field.
[0038] Furthermore, B also causes the development of induced current densities h in the fluid, as well as in any surrounding electrical conductor subjected to this magnetic field, including the metal of the tubes. Figures 3 and 4 show the development of induced current densities under the action of the external magnetic field, in the absence of flow velocity, for a DDF, respectively with one secondary coil 4, and with two secondary coils 4, 5.
[0039] The current densities Ji in turn create a magnetic field Bi distorting the external field B. Thus, the field B is not the same depending on whether the DDF is surrounded by an electrically conductive fluid or not.
[0040] In the absence of fluid movement, the receiving coil(s) deliver electrical voltages which are functions of the external magnetic field B and the field Bi.
[0041] In the presence of fluid movement, new current densities Ju appear and are the source of a magnetic field Bu. This new field modifies B, which is in some way blown by the flow of conductive fluid and deforms in the direction of its flow, as illustrated in Figures 5A, 5B and 6.
[0042] The magnetic flux passing through the receiving coil(s) depends on the flow velocity.
[0043] The receiving coil(s) therefore deliver electrical voltages reflecting the influence of the magnetic fields Bt and Bu which distort the external field B.
[0044] Numerical simulations illustrate this. Figures 7A and 7B are numerical simulations of the magnetic field around a DDF respectively in the absence and presence of electrically conductive fluid flow velocity.
[0045] The analysis of the electrical voltages delivered by the receiving coils makes it possible to determine the flow speed of the fluid in motion in the zone of action of the magnetic field B.
[0046] As shown in [Fig.8], if the single receiver coil 4 of a DDF 1 is upstream relative to the direction of fluid flow, it sees a drop in magnetic flux when the speed increases (and vice versa). The alternating voltage ej that it delivers decreases by Ae;.
[0047] The alternating voltage ej supplied by the DDF is the image of the flow speed (with indication of the direction relative to the comparison of the amplitude of the current signal with the amplitude of the signal without speed).
[0048] In addition to this, in the case of a DDF with two receiver coils, the downstream receiver coil sees an increase in the flow passing through it as the fluid speed increases. Its voltage e2 increases by Ae2.
[0049] We have IAe21= IAeJ
[0050] Generally, the two receiver coils 4, 5 of a DDF are electrically coupled in anti-series, as shown in [Fig.9].
[0051] In this way, the signal V provided by the two-coil DDF is given by:
[0052] V=le2l-le7l
[0053] with lej: modulus or amplitude of the voltage ex.
[0054] The signal V is proportional to the velocity component of the flow projected onto the axis of revolution of the DDF.
[0055] In practice, the DDF with two receiver coils is preferred, because the use The combined voltages delivered by these two coils make it possible to double the sensitivity and eliminate the dependence of the DDF response on irrelevant quantities such as temperature:
[0056] V = (le2l - le7l) / (le2l + le7l)
[0057] The sign of V gives the direction of the speed without the need for comparison with the amplitude of the signal without flow speed.
[0058] As regards the arrangement of the DDFs relative to the fluid flow, they can be internal to the flow, i.e. positioned on the axis of a tube in the middle of the flow to be characterized: [1], A DDF is thus within the fluid flow, the latter being peripheral to the DDF.
[0059] In practice, as shown in [Fig. 10], an internal DDF 1 is generally placed in the center of an annular space, delimited by two concentric tubes T1, T2, in which the fluid F whose speeds are to be measured flows.
[0060] Other DDFs may be external to the flow. The coils and core of the external DDFs are thus arranged around the fluid flow for which the velocities are to be measured.
[0061] In practice, an external DDF is placed around a tube to measure the velocity of the fluid flowing in this tube: [2].
[0062] When DDFs are used to evaluate the speed of a fluid circulating in a tube, whether internal or external to the latter, they can only measure a speed component which is that along the axis of the tube and therefore along their axis of axisymmetry X. Indeed, the tube guides the flow of the fluid and gives it its main direction.
[0063] Generally speaking, signal processing from a conventional DDF or currently existing flow meters can be complex to achieve.
[0064] There is therefore a need to propose a simplified solution for measuring the speed and processing the related signal, of the flow of electrically conductive fluids, which may be dense, for a range of high speeds and / or at high temperatures, even in large volumes.
[0065] The aim of the invention is to meet at least part of this need. Statement of the invention
[0066] To do this, the invention relates to a detector of variation in the speed of a flow of an electrically conductive fluid, comprising:
[0067] - an electromagnetic transducer, comprising:
[0068] a cylindrical metal tube forming a core with high magnetic permeability,
[0069] an electric coil, called the primary coil, wound around the tube and intended to be electrically supplied with direct current, or a permanent magnet arranged around of the tube,
[0070] at least one electrical coil, called the receiving coil, wound around the tube while being adjacent to the primary coil or to the permanent magnet, - at least one envelope detector circuit connected to the receiving coil, comprising at least one diode and a load in electrical series with the diode, the load consisting of a capacitor and an electrical resistor.
[0071] According to a first embodiment, the detector comprises a single envelope detector circuit.
[0072] Alternatively, according to a second embodiment, the detector comprises two envelope detector circuits in parallel with the receiving coil, the diode of one of the two circuits being mounted in the opposite direction to the diode of the other of the two circuits. A detector according to this embodiment makes it possible to have detection of both the increase and the decrease in the speed of the fluid flow.
[0073] Advantageously, the detector comprises an electronic device connected to the envelope detector circuit(s) to detect the electrical voltage threshold(s) at the output of the capacitor(s). The electronic device is preferably a Schmitt trigger.
[0074] Preferably, the core has low electrical conductivity to limit losses induced by variable magnetic induction, namely joule losses linked to the circulation of the induced current and hysteresis losses.
[0075] Thus, the invention essentially consists of a detector of unidirectional speed variation of an electrically driven fluid which comprises an electromagnetic transducer which operates either with a primary coil supplied with direct current or with a permanent magnet.
[0076] An envelope detector circuit is very simple as a device for processing the signal received by the receiver coil.
[0077] A detector according to the invention makes it possible to measure variations in the speed of a fluid whose nominal speed can be from a few millimeters per second to several meters per second.
[0078] Furthermore, it is suitable for measuring variations in the speeds of electrically conductive liquids, which are dense, typically with a density of the order of 100 to more than 10,000 kg.m3, and / or which are at high temperature, typically in the range of melting temperatures of the metals treated, formed or used in liquid form.
[0079] Ultimately, a detector according to the proposed invention makes it possible to overcome the identified limitations of the devices of the prior art and presents numerous advantages, including:
[0080] - a processing of the signals it produces, very simple compared to the de- existing bitmeters, and significantly less complex than the reconstruction algorithms required for state-of-the-art DDFs and tomographic measurement methods;
[0081] - the possibility of positioning within the flow to be characterized in the area to be studied.
[0082] Other advantages and characteristics will become more apparent upon reading the detailed description, given for illustrative and non-limiting purposes, with reference to the following figures. Brief description of the drawings
[0083] [Fig.l] [Fig.l] is a schematic side view of a state-of-the-art Flow Distortion Meter (FDM) with a receiving (secondary) coil.
[0084] [Fig.2] [Fig.2] is a schematic side view of a DDF according to the state of the art, two receiving (secondary) coils.
[0085] [Fig.2A] [Fig.2A] is a longitudinal sectional view of [Fig.2].
[0086] [Fig.3] [Fig.3] takes up [Fig.l] and illustrates the development of densities of currents induced under the action of the external magnetic field in the absence of flow velocity.
[0087] [Fig.4] [Fig.4] takes up [Fig.2] and illustrates the development of densities of currents induced under the action of the external magnetic field in the absence of flow velocity.
[0088] [Fig.5A], [Fig.5B] Figures 5A and 5B repeat [Fig.l] and illustrate the development development of induced current densities under the action of the external magnetic field in the presence of a flow velocity.
[0089] [Fig.6] [Fig.6] takes up [Fig.2] and illustrates the development of densities of currents induced under the action of the external magnetic field in the presence of a flow velocity.
[0090] [Fig.7A], [Fig.7B] Figures 7A and 7B are representations of bare simulations magnetic field measurements around a DDF according to the state of the art, respectively in the absence and presence of electrically conductive fluid flow velocity.
[0091] [Fig.8] [Fig.8] takes up [Fig.l] and illustrates the electrical voltage at the terminals of the state-of-the-art DDF receiver coil.
[0092] [Fig.9] [Fig.9] takes up [Fig.2] and illustrates on the one hand a pre-electrical coupling differential of the receiving coils in anti-series as well as the electrical voltages at the terminals of the coils the final voltage recorded at the terminals of the DDF according to the state of the art.
[0093] [Fig. 10] [Fig. 10] is a reprographic reproduction of a DDF according to the state of the art as arranged internally in an implantation tube for the measurement of a one-dimensional velocity of a flowing fluid F.
[0094] [Fig. 11] [Fig. 11] is a schematic side view of an electromagnetic transducer of a speed variation detector according to the invention, with a primary coil supplied with direct current and a receiving (secondary) coil.
[0095] [Fig. 12] [Fig. 12] is a schematic side view of an electromagnetic transducer of a speed variation detector according to the invention, with a permanent magnet and a receiving coil (secondary).
[0096] [Fig. 13] [Fig. 13] is a schematic view of an envelope detector circuit for a detector according to the invention.
[0097] [Fig. 14] [Fig. 14] is a schematic view of a double envelope detector circuit for a detector according to the invention. Detailed description
[0098] Throughout the present application, the terms “upstream” and “downstream” are to be understood with reference to the direction of flow of a fluid around the transducer along the Z axis.
[0099] Figures 1 to 10 have already been described in the preamble. They will therefore not be detailed later.
[0100] [Fig.l 1] shows an electromagnetic transducer 10 of a detector according to the invention, intended to measure the variation in speed of a flow of an electrically conductive fluid.
[0101] The transducer 10 is axisymmetric with a central axis X and typically consists of a core with high magnetic permeability 2, an electric transmitting coil, called primary 3, and an electric receiving coil, called secondary 4.
[0102] The core 2 is formed of a tube extending along the central axis X.
[0103] The primary 3 and secondary 4 coils are wound around the tube 2.
[0104] An alternative to the transducer of [Fig.l 1] is shown in [Fig. 12]: instead of a primary coil to be supplied with direct current, a permanent magnet 6 can be arranged around the core 2, adjacent to the secondary coil 4.
[0105] An envelope detector circuit 7 is connected across the terminals of the secondary coil 4. As illustrated in [Fig. 13], such a circuit 7 consists of a diode 8 connected in series to a load 9 consisting of a resistor 90 in parallel with a capacitor 91.
[0106] The envelope detector circuit 7 connected to an electronic device with threshold overshoot detection, not shown. It may be a Schmitt flip-flop also commonly called a Schmitt trigger.
[0107] The operation of the electromagnetic transducer detector 10 and envelope detector circuit 7 is now explained.
[0108] In the event of a variation in the speed of the fluid surrounding the transducer 10, the receiving coil 4 is the seat of an induced electromotive force caused by the variation in the magnetic flux coming either from the primary coil 3 supplied with current, or from the permanent magnet 6.
[0109] The amplitude of the voltage signal ei delivered by the receiving coil 4 depends on the amplitude of the speed variation. The speed component to which the detector is sensitive is that which is parallel to the central axis (Z).
[0110] The sign of the detector signal provides information on whether the speed variation is positive or negative (increase or decrease in speed).
[0111] The coil 4 therefore delivers a voltage ei which is rectified by the diode 8 and charges the capacitor 91. The resistor 90 allows the capacitor to discharge progressively so as to limit in a desired time the duration of existence of a voltage e' b which is the image of the envelope of the signal resulting from the values of ei over time. These values e'i are detected by the Schmitt trigger.
[0112] Thus, the existence of a voltage eb is detected in a very simple manner and can be temporarily stored for a duration which is a function of the capacity of the capacitor 90 and the ohmic resistance of the resistor 91.
[0113] With a single envelope circuit 7 according to [Fig. 13], only the increase or reduction in the speed of the fluid flowing around the transducer is obtained.
[0114] A variant of double envelope circuit 7 is illustrated in [Fig. 14]: two envelope detector circuits 7 are here connected in electrical parallel to the receiver coil 4. Each of the two circuits consists of a diode 8.1; 8.2 connected in series to a load 9.1; 9.2 consisting of a resistor 90.1; 90.2 in parallel with a capacitor 91.1; 91.2.
[0115] Diode 8.1 of one of the two circuits is mounted in the opposite direction to diode 8.2 of the other of the two circuits.
[0116] With this double circuit 7, we obtain a detection of both the increase and the decrease in speed. The voltages e'i and e”i provide information on the existence of a positive variation, for example given by e' 1 and negative, for example given by e' ' i . These output voltage values e' be”i are each detected by a Schmitt trigger.
[0117] Other variants and improvements may be envisaged without departing from the scope of the invention. List of cited references
[0118] [1] : https: / / www.hzdr.de / db / Cms?pOid=55433&pNid=226
[0119] [2]: https: / / ieeexplore.ieee.org / stamp / stamp.jsp?arnumber=9768530
Claims
Claims
1. A detector for variation in the speed of a flow of an electrically conductive fluid, comprising: - an electromagnetic transducer (10), comprising: a cylindrical metal tube (2) forming a core with high magnetic permeability, an electric coil (3), called the primary coil, wound around the tube and intended to be electrically supplied with direct current, or a permanent magnet arranged around the tube, at least one electric coil (4), called the receiver coil, wound around the tube while being adjacent to the primary coil or to the permanent magnet, - at least one envelope detector circuit (7) connected to the receiver coil, comprising at least one diode (8; 8.1, 8.2) and a load (9; 9.1, 9.2) in electrical series with the diode, the load consisting of a capacitor (90; 90.1, 90.2), and an electrical resistor (91; 91.1, 91.2).
2. A detector according to claim 1, comprising a single envelope detector circuit.
3. Detector according to claim 1, comprising two envelope detector circuits in parallel with the receiving coil, the diode of one of the two circuits being mounted in the opposite direction to the diode of the other of the two circuits.
4. Detector according to one of the preceding claims, comprising an electronic device connected to the envelope detector circuit(s) for detecting the electrical voltage threshold(s) (e'i, e”i) at the output of the capacitor(s).
5. Detector according to claim 4, the electronic device being a Schmitt trigger.
6. Use of a detector according to one of the preceding claims, for measuring variation in speed of a flow of an electrically conductive fluid, such as a liquid metal from a nuclear reactor.
Citation Information
Patent Citations
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