METHOD, DEVICE AND USE FOR THE DEVICE FOR QUANTITATIVELY DETERMINING THE CONCENTRATION OR PARTICLE SIZE OF A COMPONENT OF A HETEROGENEOUS MATERIAL MIXTURE

20190145939 ยท 2019-05-16

    Inventors

    Cpc classification

    International classification

    Abstract

    The invention relates to a method and a device for quantitively determining a number and size of particulate components contained in a medium flowing along a flow channel. Ultrasonic waves are coupled into the flowing medium, which are reflected at least partially by the particulate components and reflected ultrasonic wave portions which are detected in a ultrasonic time signals, on which the quantitive determination is based.

    The invention comprises method steps of: coupling the ultrasonic waves into the flowing medium in at least one portion of the coupled-in ultrasonic waves is reflected by a wall of the flow channel bordering the flow medium or a reflector introduced within the flow channel, from which an echo-ultrasonic time signal associated with the wall or the reflector is generated:

    At least one amplitude threshold value function in determined which establishes an amplitude threshold value for each detected ultrasonic time signal which takes into consideration at least the -ultrasonic time signal:

    Amplitude values associated with the individual ultrasonic time signals, are detected which are each greater than an amplitude threshold value established for each ultrasonic time signal: The detected amplitude values are assigned to values describing the size and the number of the particulate components.

    Claims

    1.-15. (canceled)

    16. A method for quantitively determining a number and size of particulate components contained in a flowing medium along a flow channel, wherein ultrasonic waves are coupled into the flowing medium, which are reflected at least partially by the particulate components and reflected portions of ultrasonic waves are detected as ultrasonic time signals, on which quantitative determination is based, comprising steps of: coupling the ultrasonic waves into the flowing medium so that at least one portion of coupled ultrasonic waves is reflected by a wall of the flow channel bordering the flow medium or a reflector introduced within the flow channel, by which the ultrasonic time signals produced by the wall region or the reflector are generated; determining at least one amplitude threshold value function which establishes an amplitude threshold value for each detected ultrasonic time signal, based on at least the ultrasonic time signals; detecting amplitude values associated with individual ultrasonic time signals which are greater than an amplitude threshold value of each ultrasonic time signal; and assigning the detected amplitude values to values describing a size and number of the particulate components.

    17. Method according to claim 16, wherein: the ultrasonic waves are coupled into the medium flowing through the flow channel in a main direction of propagation directed at an angle to the direction of flow of the flowing medium which are orthogonal or oblique to the wall region of the flow channel, or meet the reflector located inside the flow channel and are reflected as reflected ultrasonic wave portions reflected in the area of or at a site at which coupling into the medium occurs.

    18. The method according to claim 16, wherein: calculation of the amplitude threshold value considers at least one of the following physical properties: an ultrasonic field distribution in the flowing medium; acoustic attenuation in the ultrasonic waves in the flowing medium; and coupling conditions of the ultrasonic waves in the flowing medium.

    19. The method according to claim 17, wherein: calculation of the amplitude threshold value considers at least one of the following physical properties: an ultrasonic field distribution in the flowing medium; acoustic attenuation in the ultrasonic waves in the flowing medium; and coupling conditions of the ultrasonic waves in the flowing medium.

    20. The method according to claim 16, wherein: amplitude values which are individually larger than an amplitude threshold defined for the respective ultrasonic time signal are captured within a defined evaluation time range, corresponding to a spatial measurement range within the flowing medium along a main direction of propagation and lies between a location of the coupling and a wall delimiting the flow channel or the reflector.

    21. The method according to claim 17, wherein: amplitude values which are individually larger than an amplitude threshold defined for the respective ultrasonic time signal are captured within a defined evaluation time range, corresponding to a spatial measurement range within the flowing medium along a main direction of propagation and lies between a location of the coupling and a wall delimiting the flow channel or the reflector.

    22. The method according to claim 18, wherein: amplitude values which are individually larger than an amplitude threshold defined for the respective ultrasonic time signal are captured within a defined evaluation time range, corresponding to a spatial measurement range within the flowing medium along a main direction of propagation and lies between a location of the coupling and a wall delimiting the flow channel or the reflector.

    23. The method according to claim 19, wherein: amplitude values which are individually larger than an amplitude threshold defined for the respective ultrasonic time signal are captured within a defined evaluation time range, corresponding to a spatial measurement range within the flowing medium along a main direction of propagation and lies between a location of the coupling and a wall delimiting the flow channel or the reflector.

    24. The method according to claim 20, wherein: coupling of the ultrasonic waves into the flowing medium are focussed in a focal point located along the main direction of propagation which lies before or after the wall that delimits the flow channel in the main direction of propagation.

    25. The method according to claim 16, wherein: assignment of the captured amplitude values to values describing a number of particulate components within the flowing medium is based on a number or statistical frequency with which the amplitude values captured per ultrasonic time signal are above an amplitude threshold value defined for each ultrasonic time signal by the amplitude threshold value function.

    26. The method according to claim 17, wherein: assignment of the captured amplitude values to values describing a number of particulate components within the flowing medium is based on a number or statistical frequency with which the amplitude values captured per ultrasonic time signal are above an amplitude threshold value defined for each ultrasonic time signal by the amplitude threshold value function.

    27. The method according to claim 18, wherein: assignment of the captured amplitude values to values describing a number of particulate components within the flowing medium is based on a number or statistical frequency with which the amplitude values captured per ultrasonic time signal are above an amplitude threshold value defined for each ultrasonic time signal by the amplitude threshold value function.

    28. The method according to claim 20, wherein: assignment of the captured amplitude values to values describing a number of particulate components within the flowing medium is based on a number or statistical frequency with which the amplitude values captured per ultrasonic time signal are above an amplitude threshold value defined for each ultrasonic time signal by the amplitude threshold value function.

    29. The method according to claim 24, wherein: assignment of the captured amplitude values to values describing a number of particulate components within the flowing medium is based on a number or statistical frequency with which the amplitude values captured per ultrasonic time signal are above an amplitude threshold value defined for each ultrasonic time signal by the amplitude threshold value function.

    30. The method according to claim 17, wherein: assignment of the captured amplitude values to values describing size of the particulate components is based on a numerical amount of the amplitude value of the ultrasonic time signal.

    31. The method according to claim 30, wherein: obtaining absolute size values is based on a calibration value or calibration function is calculated by capturing an ultrasonic time signal, obtained by reflection of the ultrasonic waves on a known ultrasonic reflector.

    32. The method according to claim 31, wherein: the at least one amplitude threshold value function is calculated using the calibration value or calibration function.

    33. A device for quantitively determining a number and size of particulate components contained in a medium flowing along a flow channel, in which ultrasonic waves are coupled into the flowing medium, which are reflected at least partially by the particulate components and the reflected ultrasonic wave portions of which are detected are ultrasonic time signals, on which the quantitively determining is based, comprising acoustically coupled ultrasonic waves into the flowing medium at least in a section of at least one waveguide acoustically coupled to an ultrasound transducer which is immersed in the flowing medium, surrounding the waveguide comprising an outer waveguide model by an outer layer at least in the region thereof which is immersed in the flowing medium, to position the outer layer between the waveguide material and the flowing medium, and the outer layer has a material composition which differs from other waveguide material located inside the outer waveguide model.

    34. The device according to claim 33, wherein: the waveguide has an end which is blunt, tapered or geometrically shaped on one side for coupling focussed ultrasonic waves into the flowing medium; and at least a portion of the end of the waveguide is surrounded by the outer layer, whose material composition is selected to be dependent upon the flowing medium so that the material composition of the outer layer dissolves upon contact with the flowing medium.

    35. The device according to claim 33, wherein: the material composition of the outer layer contains at least one substance which at least one of initiates and supports wetting of the flowing medium on the waveguide material.

    36. The device according to claim 34, wherein: the material composition of the outer layer contains at least one substance which at least one of initiates and supports wetting of the flowing medium on the waveguide material.

    37. The device according to claim 35, wherein: the at least one substance is a smelting salt.

    38. The device according to claim 35, wherein: the at least one substance is surrounded by a cover or a matrix of material that melts in the flowing medium.

    39. The device according to claim 37, wherein: the at least one substance is surrounded by a cover or a matrix of material that melts in the flowing medium.

    40. A use of the device according to claim 33 comprising: determining concentration of foreign bodies in a flowing medium of molten metal.

    Description

    BRIEF DESCRIPTION OF THE DRAWINGS

    [0034] In the drawing:

    [0035] FIG. 1 shows a device for measuring particulate components in a flowing medium by use of a waveguide for coupling ultrasonic waves into the medium;

    [0036] FIG. 2 shows the device according to FIG. 1 with two waveguides for coupling ultrasonic waves into the medium;

    [0037] FIG. 3 shows the device according to FIG. 2 with two waveguides for coupling focussed ultrasonic waves into the medium;

    [0038] FIG. 4 is a diagrammatic representation of ultrasonic time signals having a superimposed amplitude threshold value function and evaluation time range; and

    [0039] FIG. 5 shows the device according to FIG. 1 with a waveguide with a wetting shoe on the waveguide tip.

    DETAILED DESCRIPTION OF THE INVENTION

    [0040] With reference to the above drawings, which will be described in the following text, a device is described with which it is possible to measure at least one of concentration and number and size of particulate components in a flowing medium 3. The medium may for example be material mixtures, melts, molten metals, such as aluminium melt, or liquids which are measured with a high degree of accuracy.

    [0041] As represented FIG. 1, ultrasound is generated by an ultrasonic transducer 1, which functions as an emitter and is coupled into the liquid to be investigated via a waveguide 2, which is a means for coupling the ultrasound to the liquid. It is assumed that the flowing medium 3 flows through the container 4 in a direction which is orthogonal to the plane of the drawing. As represented in FIG. 1, the same ultrasonic transducer 1 may also serve as the receiver of the ultrasonic field from the flowing medium 3.

    [0042] In each of FIG. 2 and FIG. 3, a further ultrasonic transducer 7 is used with an additional acoustically coupled waveguide 8. The waveguide 8 couples the additional ultrasonic transducer 7 acoustically with the flowing medium 3. If more than one ultrasonic transducer is present, various operating modes can be implemented. For example, the ultrasonic transducer 1 may serve as the emitter and the ultrasonic transducer 7 may serve as the receiver, or vice versa, or both ultrasonic transducers 1, 7 may serve as emitters and operate with a time offset as receivers. The ultrasonic signals received by at least one ultrasonic transducer 1,7 are recorded and evaluated by the measurement devices/evaluation technology/evaluator 6. The evaluator 6 captures the reflections or echoes of the ultrasonic field from the flowing medium 3 and the reflection from an ultrasonic reflector 5 optionally introduced into the flowing medium 3. A limit wall 4a of the container 4, which at least partially encloses the material mixture, preferably serves as an ultrasonic reflector 5, delimiting the ultrasonic waves in the direction of propagation thereof. The echo from the ultrasonic reflector 5, limit wall 4a serves for calibrating the evaluation of the echoes from the flowing medium 3. At least one amplitude threshold value function, which is defined on the basis of the echo from the ultrasonic reflector 5, limit wall 4a is used to evaluate the echoes from the flowing medium 3.

    [0043] A preferred device is among other elements of the at least one ultrasonic transducer 1, the waveguide 2 coupled acoustically to the ultrasonic transducer 1, a container 4 for holding or allowing a flowing medium 3, particularly a suspension, to pass through, an ultrasonic reflector 5 or wall region 4a arranged in the medium, wherein the waveguide 2 protrudes into the medium 3 and is arranged in such manner relative to the ultrasonic reflector 5 and limit wall 4a so that an ultrasonic field formed in the medium 3 has at least one focus 13, which lies spatially between the ultrasonic reflector 5, limit wall 4a, and the first waveguide 2 and/or an additional waveguide 8.

    [0044] A further preferred device consists, among other elements, has at least one evaluator 6 coupled with the at least one ultrasonic transducer 1, the waveguide 2 coupled acoustically to the ultrasonic transducer 1, a container 4, through which passes a flowing medium 3 particularly in the form of a suspension. The waveguide 2 protrudes into the medium 3 and is configured to couple an ultrasonic field generated by the ultrasonic transducer 1 into the medium 3 and to couple reflections of the ultrasonic field on boundary surfaces in the flowing medium 3 particularly on particles in the medium 3, into the ultrasonic transducer as ultrasonic time signals. The evaluator is configured to capture and count at least one of energy maxima and power maxima in the reception time signal using a threshold function.

    [0045] A further preferred device has at least the at least one waveguide 2 coupled acoustically to the ultrasonic transducer 1, which protrudes into a flowing medium that is to be analyzed, particularly a suspension, wherein at least part of the waveguide 2 has an outer layer 10 with a material composition that differs from the rest of the waveguide material. The outer layer 10 is arranged between the rest of the waveguide material and the flowing medium 3 as shown in FIG. 5.

    [0046] The space that is defined by the end of the at least one waveguide 2 and the ultrasonic reflector 5 and limit wall 4a serves as the measurement volume.

    [0047] A focus 13 of the ultrasonic field id preferably located within the measurement volume.

    [0048] The echo created by the ultrasonic reflector 5 and limit wall 4a is also referred to as the rear wall echo. These two terms are interchangeable.

    [0049] The ultrasonic reflector 5 integrated in the construction generates a rear all echo in the ultrasonic signal as shown in FIG. 4. This serves as a calibration of the ultrasonic signal, since the coupled ultrasonic energy is represented herein. The calibration relates to a conclusion regarding absolute particle size in that it is included in the definition of the amplitude threshold value function. The rear wall echo may also be used to test the function of the measurement system, since coupling fluctuations in the ultrasound can be detected by waveguides in the liquid and also corrected thereby.

    [0050] The positioning of the ultrasonic reflector inside the measurement medium is determined by the waveguides that are used. In this context, the following arrangements are preferably possible: [0051] a) If the waveguides are arranged at an angle relative to each other (FIG. 3), the highest ultrasound amplitude is achieved by focus 9, which results from the intersection point between the extension of the two waveguides. The ultrasonic reflector is arranged at such a distance from the waveguide that the focus 9 is located between the waveguide on the one side and the ultrasound reflector on the other side. The distance between the focus 9 and the ultrasonic reflector is preferably in the range from 5 mm to 80 mm. [0052] In the event that container 4 is only very shallow, the focus 9 is more distant than the reflector 5, that is the container wall. Although this case is not ideal, it is still possible to carry out a measurement. [0053] b) If the waveguides 2, 8 are arranged parallel to each other (FIG. 2) or if a single waveguide 2 is being used (FIG. 1), the position of the ultrasonic reflector 5 and wall region 4a is defined by the focus 13 of the ultrasonic field. This focus 13 is dependent on the geometry of the tips of the waveguides 2, 8, which are located in the flowing medium 3. The ultrasonic reflector 5, that is the limit wall 4a of the container is preferably arranged at a greater or equal distance (13). Even when the construction is as represented in FIG. 1 and/or FIG. 2, the focus 13 of the ultrasonic field is located in a space that is delimited on the one hand by the tips of the waveguides and on the other by the ultrasonic reflector 5 that is the limit wall 4a of the container. [0054] In the event that container 4 is only very shallow, it can happen that the focus 9 is more distant than the reflector 5, that is the container wall. Although this case is not ideal, it is still possible to carry out a measurement. [0055] c) Depending on the size or depth of the container 4, the focus 13 may also lie behind the reflector 5 or behind the limit wall 4a in the direction of ultrasonic propagation, even outside the container 4, for example.

    [0056] In order to measure an aluminium melt as a flowing medium 3, a structure according to FIG. 3, for example may be selected. Focus 9 corresponds approximately to a distance of 50 mm from the tips of the waveguides 2, 8. The angle between the waveguides 2,8 in this case is equal to 8? to 30?. The ultrasonic reflector 5 or the limit wall 4a of the container is a hot working steel. In this context, particularly ceramic materials and/or all hot-melting materials which are poorly wetted in the flowing medium are also highly suitable for use, including for example SiAION, silicon nitride, aluminium oxide.

    [0057] The waveguides 2,8 are preferably selected such that sufficient wetting of the flowing medium is produced. The waveguide setups correspond for example to those shown in FIGS. 1, 2, 3, 5.

    [0058] For the aluminium melts as medium, waveguides of titanium (grade 2) may be used. Further suitable waveguide materials are silicon nitride, SiAION, steel (hot working steel 1018 H13 (USA) or X40 CrMoV 5-1 and annealed steel (1.4436)). The waveguides are for example 600 mm, 500 mm, 400 mm or 300 mm long and have diameters of 8 mm, 9 mm. 10 mm, 11 mm, 12 mm, 13 mm or 14 mm.

    [0059] The frequency of the ultrasonic field is preferably in the frequency range from 2 MHz to 12 MHz. For example, for an aluminium melt as the measurement medium, an ultrasound frequency of 6 MHz or 10 MHz has proven suitable, wherein an ultrasound frequency of about 10 MHz is particularly preferred.

    [0060] In order to evaluate the number of particles in the flowing medium, an evaluation time range according to FIG. 4 before the rear wall echo or ultrasonic reflector echo is selected. The selection of the evaluation time range enables the measurement volume to be adjusted individually. A smaller evaluation time range corresponds to a smaller measurement volume.

    [0061] In this case, the evaluation time range is coupled to the ultrasonic fields in the medium very powerfully, because sufficient ultrasound energy is needed.

    [0062] For the aluminium melts, an evaluation time range is selected that corresponds approximately to 4 cm in the medium. The end of the evaluation time range is located just in front of the rear wall echo (FIG. 4). Since the measurement volume can be adjusted with this time range, in principle a considerably shorter time range and, given sufficient ultrasonic energy, a considerably longer time range are also possible.

    [0063] Counting is preferably carried out of the number of amplitude values which exceed a given amplitude threshold value function within the selected time range (see FIG. 4). The count value is proportional to the particle concentration, so that a specific particle concentration may be calculated from the count value with the aid of a calibration function.

    [0064] For an aluminium melt, the relevant concentration ranges that can also be captured by a measuring system, are detectable in the range from 100 particles to 100,000 particles per kg aluminium melt.

    [0065] The amplitude threshold value function or the selection of multiple amplitude threshold value functions enable a conclusion to be drawn regarding at least one of the particle size and particle size distribution. The height and shape of the rear wall echo can be used for calibration purposes. It is also possible to draw a conclusion about at least one of the absolute particle size and particle size distribution. Otherwise, a qualitative conclusion is obtained. The amplitude threshold value function may also be coupled mathematically to the rear wall echo to correct coupling fluctuations from at least the coupling and the receiving medium into the flowing medium.

    [0066] The amplitude threshold value function preferably has a constant temporal curve. But in order to correct the acoustic attenuation in the measurement medium for example, a logarithmic or exponential curve may be used. The acoustic attenuation follows for example, an exponential function with a negative exponent. The effect of attenuation may be corrected by multiplication with an exponential function having a positive exponent.

    [0067] The introduction of a wetting shoe (12), shown in FIG. 5, enables the locally controllable wetting of the waveguide with the medium. In such a case, a cover (11) which dissolves in the flowing medium and which contains a substance (10) that promotes wetting, is placed on the tip of the waveguide 2. After immersion in the medium 3, the wetting shoe (12) dissolves and the substance (10) that promotes wetting is released locally. A further option is melting the substance that promotes wetting and immersing one end of the waveguide (2) (8) in a liquid substance (10) that promotes wetting.

    [0068] The substance (10) that is used preferably promotes wetting for a molten metal and particularly aluminium melt use conventional smelting salts (salt 1: approximate composition: KCl (47.6%), NaCl (45.7%), SO4 (2.14%), CaF2 (0.14%); salt 2: approximate composition: KCl (50%), NaCl (50%)).

    [0069] The salts may be placed in a cover of aluminium foil, for example, which serves as the outer Layer (11). The cover is then placed over the tips of the waveguides (see FIG. 5) and dissolved in the liquid/molten metal.

    [0070] The cover may also be made from a material which melts or dissolves in the liquid.

    LIST OF REFERENCE SIGNS

    [0071] 1 Ultrasonic transducer [0072] 2 Waveguide [0073] 3 Liquid, particularly suspension [0074] 4 Container [0075] 4a Limit wall [0076] 5 Ultrasonic reflector [0077] 6 Evaluator [0078] 7 Further ultrasonic transducer [0079] 8 Waveguide [0080] 9 Ultrasonic field focus [0081] 10 Outer layer [0082] 11 Cover [0083] 12 Wetting shoe [0084] 13 Ultrasonic field focus