Arrangement and ultrasonic, flow measuring device
10497350 ยท 2019-12-03
Assignee
Inventors
- Yaoying Lin (Freising, DE)
- Alfred Rieder (Landshut, DE)
- Wolfgang Drahm (Erding, DE)
- Michal Bezdek (Aesch, CH)
- Pierre Ueberschlag (Saint-Louis, FR)
Cpc classification
G01F1/667
PHYSICS
G10K11/002
PHYSICS
International classification
G10K11/00
PHYSICS
G01F1/66
PHYSICS
Abstract
An arrangement, comprising a housing wall, an ultrasonic transducer and a damping element with a longitudinal axis, which damping element connects the ultrasonic transducer with the housing wall. The ultrasonic transducer has an end piece with a medium-contacting surface, from which ultrasonic signals are transferred into a gaseous or liquid medium. The damping element is provided for body sound damping between the ultrasonic transducer and the housing wall, and wherein the damping element has at least one, especially a number of, oscillatory nodes, characterized in that there is arranged between the damping element and the housing wall at least a first sealing ring, which is positioned at a height of an oscillatory node.
Claims
1. An arrangement, comprising: a housing wall; an ultrasonic transducer; and a damping element with a longitudinal axis, which damping element connects said ultrasonic transducer with said housing wall, wherein: said ultrasonic transducer has a medium-contacting surface, from which ultrasonic signals are transferred into a gaseous or liquid medium; said damping element is provided between said ultrasonic transducer and said housing wall for body sound damping; and said damping element has at least one, especially a number of, oscillatory nodes characterized in that there is arranged between said damping element and said housing wall at least a first sealing ring, which is positioned at a height of an oscillatory node.
2. The arrangement as claimed in claim 1, wherein: said damping element has a hollow-cylindrical and rotationally symmetric, basic form.
3. The arrangement as claimed in claim 1, wherein: said damping element sits terminally on a torus or on a spherically shaped body.
4. The arrangement as claimed in claim 1, further comprising: between said damping element and said housing wall a sealing element, especially a rotationally symmetric sealing element, which extends over a region of at least 20% of the length of said damping element between said damping element and said housing wall, wherein: said first sealing ring is arranged between said sealing element and said damping element.
5. The arrangement as claimed in claim 4, further comprising: a second sealing ring, which is arranged between said sealing element and saud housing wall at a height of an oscillatory node of said damping element.
6. The arrangement as claimed in claim 1, wherein: said first and/or said second sealing ring has a round cord profile.
7. The arrangement as claimed in claim 1, wherein: said damping element has at least one, preferably at least two, annular grooves.
8. The arrangement as claimed in claim 1, further comprising: in a terminal region of said damping element a closed hollow space, wherein: said first sealing ring is provided, in order to prevent entry of medium into the hollow space.
9. The arrangement as claimed in claim 1, wherein: the hardness of said first and/or of said second sealing ring amounts, according to DIN EN ISO 868 and/or DIN ISO 7619-1, to 60-80 ShA, preferably 65-75 ShA.
10. The arrangement as claimed in claim 1, wherein: the material of said sealing ring is preferably a silicon-based elastomeric synthetic material, especially silicone.
11. An ultrasonic, flow measuring device comprising at least one, especially two, arrangements, as claimed in claim 1.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present invention will now be explained in greater detail based on the appended drawing, the figures of which show as follows:
(2)
(3)
(4)
(5)
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(7)
DETAILED DISCUSSION IN CONJUNCTION WITH THE DRAWINGS
(8) The present arrangement can be applied both in the case of fill level measuring devices as well as also in the case of flow measuring devices. In the following, however, the construction, operation and advantages resulting therefrom will be described primarily for an ultrasonic, flow measuring device. The arguments can, however, predominantly also be applied to ultrasonic, fill level measurement.
(9) Ultrasonic, flow measuring devices are widely applied in process and automation technology. They permit simple determination of volume flow and/or mass flow of a measured medium in a pipeline. Known ultrasonic, flow measuring devices work frequently according to the travel-time difference principle. In the case of the travel-time difference principle, the different travel times of ultrasonic waves, especially ultrasonic pulses, so-called bursts, are evaluated as a function of the flow direction of the liquid. For this, ultrasonic pulses are sent at a certain angle to the tube axis both with as well as also counter to the flow. From the travel-time difference, the flow velocity, and therewith, in the case of known diameter of the pipeline section, the volume flow, can be determined.
(10) The ultrasonic waves are produced and received with the assistance of so-called ultrasonic transducers. For this, ultrasonic transducers are connected solidly with the tube wall of the relevant pipeline section. This device type is known to those skilled in the art also as an inline ultrasonic flow measurement device. Also clamp-on ultrasonic, flow measuring systems exist, which are placed, e.g. secured, externally on the measuring tube. Clamp-on ultrasonic, flow measuring devices are, however, not subject matter of the present invention
(11) Ultrasonic transducers have, normally, an electromechanical transducer element, e.g. one or more piezoelectric elements.
(12) Both in the case of clamp-on systems, as well as also in the case of inline systems, the ultrasonic transducers are arranged on the measuring tube in a shared plane, either on oppositely lying sides of the measuring tube, in which case the acoustic signal then travels, projected on a tube cross section, once along a secant through the measuring tube, or on the same side of the measuring tube, in which case the acoustic signal is then reflected on the oppositely lying side of the measuring tube, whereby the acoustic signal traverses the measuring tube two times along the secant projected on the cross section through the measuring tube.
(13) In the concrete example of an embodiment of
(14) End piece 4 shown in
(15) The pedestal of the end piece 4 includes an interface to a damping element 3. This damping element 3 is embodied as a cylindrical body with at least two annular grooves 8 extending parallel to one another. The interface between the ultrasonic transducer 2 and the damping element 3 can be embodied e.g. as a welded connection.
(16) Arranged between the interface and a first of the two annular grooves 8 is a first annular mass segment 7, which has a greater wall thickness, especially a wall thickness at least twice as thick as that of the first of the two annular grooves 8.
(17) Arranged between the two annular grooves 8 is, additionally, a second annular segment 7, which has a greater wall thickness, especially a wall thickness at least twice as thick as that of the annular grooves 8.
(18) The damping element 3 has another interface, where the damping element 3 is affixed to the wall 9 of a housing or tube.
(19) In the case of such arrangements, in the case of a purely terminal arrangement, contaminants can collect in the region between the housing wall and the damping element. Therefore, it is prudent to provide in these regions sealing elements, thus sealing rings and/or other space filling sealing elements, in order to seal off the intermediate region between the housing wall and the damping element. The problems resulting therefrom and their solutions will now be discussed in greater detail based on
(20)
(21) Ultrasonic transducer 13 is embodied analogously to that in
(22) Following the ultrasonic transducer 13 is a damping element 19, which is connected with the ultrasonic transducer 13 via an interface. The damping element is cylindrically constructed and has in contrast with the example of an embodiment of
(23) The damping element rests terminally on a spherically shaped body 25 or on a torus, which is arranged between the mentioned damping element and the housing wall 14. The terminology, spherical, in the sense of the present invention, includes also deviations from the ideal circular shape and means, in general, bodies with concave, especially strongly concave, shape. Also, a partial flattening of a section of the body can be present.
(24) Arranged laterally, thus between the cylindrical surface of the damping element 19 and the housing wall 14, is a sealing element 24. This sealing element 24 is shape-interlocked with the housing wall 14 in certain regions and includes likewise a shape interlocking connection with the damping element 19 in certain regions. Also a material bonded, e.g. welded, connection can be present at these shape-interlocking connections.
(25) Additionally a sound path 20 is shown, which extends along and through the damping element.
(26) Arranged between the sealing element 24 and the housing wall 14 in the region of a sharp bend is a further body-sound damping element 23. Arranged between the sealing element 24 and the damping element 19 as well as also between the sealing element 24 and the housing wall 14 are seals 21, 22, especially sealing rings. The positioning of these sealing rings 21 and 22 is decisive for the course of the body sound within the arrangement.
(27) Two sound paths 20 and 26 are present in
(28) By an optimal placing of sealing bodies, thus of the sealing element 24 and the sealing rings 21, 22, however, transfer of body sound via the sound path 26 can be prevented.
(29) The optimal placing of one or more sealing elements will now be explained in greater detail based on
(30)
(31) For a minimized sound transfer, it has proved to be favorable that one one or more sealing rings be emplaced at such an oscillation node 27.
(32)
(33) Furthermore, also a sealing ring 22 is arranged between the sealing element 24 and the housing wall 14, also at a height of an additional node, thus at the axial position of the additional node 27. The specifications refer, of course, to the position of the node of the damping element 19 in the resting position.
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(36) Of course, the invention can also be presented in other examples of embodiments. Thus,
(37) Furthermore, the damping element includes, analogously to the damping element of
(38) Of course, many other examples of embodiments are implementable in the context of present invention. Therefore, the subject matter of the present invention is not limited to the above-described examples of embodiments.
(39) In general, the arrangement of the invention can be constructed as one piece or multipiece. The damping element and the ultrasonic transducer are rotationally symmetric and are of metal. In such case, the end piece can preferably be of stainless steel or titanium. The damping element is composed preferably of stainless steel.