Vibronic Sensor and Measuring Assembly for Monitoring a Flowable Medium
20200264087 ยท 2020-08-20
Inventors
- Andrea Berlinger (Baden-Baden, DE)
- Ingo Buschke (Maulburg, DE)
- Christof Huber (Bern, CH)
- Peter Klofer (Steinen, DE)
- Sergej Lopatin (Lorrach, DE)
- Torston Pechstein (Radebeul, DE)
- Thomas Uehlin (Schopfheim, DE)
Cpc classification
G01N9/002
PHYSICS
International classification
Abstract
A vibronic sensor for monitoring a flowable medium, comprising: an oscillator to which a medium surrounding the oscillator can be applied; at least one electromechanical transducer for exciting the oscillator to mechanical vibrations in accordance with driver signals and/or for outputting transducer signals that depend on vibrations of the oscillator; an operating and evaluating unit for providing the driver signals for driving the electromechanical transducer, for capturing the transducer signals, and for determining the presence, the density, and/or the viscosity of the medium in accordance with the transducer signals, wherein the operating and evaluating unit is designed to detect whether the medium in the pipe has a flow velocity above a limit value on the basis of time-varying modifications of the transducer signals.
Claims
1-14 (canceled)
15. A vibronic sensor for monitoring a flowable medium, comprising: an oscillator to which a medium surrounding the oscillator can be applied; at least one electromechanical transducer for exciting said oscillator to mechanical vibrations in accordance with driver signals, and/or for outputting transducer signals that depend upon vibrations of said oscillator; and an operating and evaluating unit for providing the driver signals for driving said at least one electromechanical transducer, for capturing the transducer signals, and for determining the presence, the density, and/or the viscosity of the medium in accordance with the transducer signals, wherein: said operating and evaluating unit is set up to detect whether the medium in the pipe has a flow velocity above a limit value on the basis of time-variable modifications of the transducer signals.
16. The vibronic sensor according to claim 15, wherein: said oscillator has an oscillating fork, a paddle, or a rod.
17. The vibronic sensor according to claim 15, wherein: the time-variable modifications of the transducer signals are periodic, given a constant flow velocity of the medium above the limit value.
18. The vibronic sensor according to claim 17, wherein: said oscillator has a resonance frequency which depends upon the density of the medium; and the limit value for the flow velocity is selected so that the frequency of the periodic modifications, given a flow velocity that corresponds to the limit value, is not more than one-fourthin particular, not more than one-eighthof the resonance frequency of the oscillator.
19. The vibronic sensor according to claim 15, wherein: said evaluating unit is set up to determine values for at least one characteristic quantity of the vibrations of said oscillator, using the transducer signals of multiple vibration periods of said oscillator, and to perform a statistical analysis of the values of the at least one characteristic quantity, in order to detect the modifications of the transducer signals; and the characteristic quantity is selected from the frequency of the transducer signals, a period of the transducer signals, an amplitude of the transducer signals, or a phase relationship between the driver signals and the transducer signals.
20. The vibronic sensor according to claim 19, wherein: the statistical analysis includes the widthin particular, the half-widthof a distribution of the values of the characteristic quantity.
21. The vibronic sensor according to claim 19, wherein: the statistical analysis includes determining the mean deviation between successive values of the characteristic quantity.
22. The vibronic sensor according to claim 15, wherein: said operating and evaluating unit has a microprocessor which is, in particular, set up to perform the above statistical analyses on digitized transducer signals, to establish and signal a flow rate, and, if applicable, to determine and output an associated flow-rate measurement value.
23. A measuring assembly, comprising: a vibronic sensor for monitoring a flowable medium, comprising: an oscillator to which a medium surrounding the oscillator can be applied; at least one electromechanical transducer for exciting said oscillator to mechanical vibrations in accordance with driver signals, and/or for outputting transducer signals that depend upon vibrations of said oscillator; and an operating and evaluating unit for providing the driver signals for driving said at least one electromechanical transducer, for capturing the transducer signals, and for determining the presence, the density, and/or the viscosity of the medium in accordance with the transducer signals, wherein: said operating and evaluating unit is set up to detect whether the medium in the pipe has a flow velocity above a limit value on the basis of time-variable modifications of the transducer signals; and a pipe, wherein said vibronic sensor protrudes into the pipe.
24. The measuring assembly according to claim 23, wherein: the pipe has a pipe wall; the vibronic sensor protrudes through a segment of said pipe wall, and essentially orthogonal to said pipe wall, into the pipe.
25. The measuring assembly according to claim 24, wherein: the oscillator can be excited to vibration essentially at right angles to the segment of said pipe wall.
26. The measuring arrangement according to claim 24, wherein: the oscillator can be excited to vibration essentially at right angles to the longitudinal axis of said measurement pipe.
27. The measuring assembly according to claim 24, wherein: the oscillator can be excited to vibration essentially parallel to the longitudinal axis of said measurement pipe.
28. The measuring assembly according to claim 23, wherein: the operating and evaluating unit has a data storage in which is stored a model that describes a link, specific to the measuring assembly, between the flow rate and the time-variable modifications of the transducer signals for at least one medium.
Description
[0026] The invention is explained in the following in further detail on the basis of the exemplary embodiments shown in the figures. These show:
[0027]
[0028]
[0029]
[0030]
[0031]
[0032] The exemplary embodiment 1 of a measuring assembly according to the invention as depicted in
[0033] The second exemplary embodiment 101 of a measuring assembly according to the invention, as depicted in
[0034] The procedure for detecting or measuring flow rate is now explained using
[0035]
[0036] For a given vibronic sensor, the precise relationship between half-width and flow rate depends, on the one hand, upon the media properties and, on the other hand, upon geometric conditions of the respective measuring assembly. Specific corresponding modelings, which describe the correlation between half-width of the distribution of the period duration of the oscillator vibrations and the flow rate of a medium.