Method for Operating a Measuring Apparatus
20170059372 ยท 2017-03-02
Inventors
Cpc classification
G01F1/66
PHYSICS
International classification
Abstract
A method for operating a measuring apparatus, comprising the steps as follows: ascertaining a flow velocity comparing the ascertained flow velocity with a threshold value, which corresponds to a critical loading, especially to a resonant frequency, of a measuring apparatus immersion body protruding into the flow; and outputting a report, which signals reaching of a critical flow and/or frequency.
Claims
1-15. (canceled)
16. A method for operating a measuring apparatus, comprising the steps as follows: ascertaining a flow velocity; comparing the ascertained flow velocity with a threshold value, which corresponds to a critical loading, in particular to a resonant frequency, of an immersion body of said measuring apparatus protruding into the flow; and outputting a report signaling reaching of a critical flow and/or frequency
17. The method as claimed in claim 16, wherein: a vortex shedding frequency on the immersion body is determined from the ascertained flow velocity.
18. The method as claimed in claim 16, wherein: the immersion body is a protective tube of a measuring apparatus for determining temperature.
19. The method as claimed in claim 16, wherein: the flow velocity is ascertained by means of a flow measuring apparatus.
20. The method as claimed in claim 16, wherein: the immersion body and the flow measuring apparatus are arranged in the same pipeline section.
21. The method as claimed in claim 16, wherein: the measuring apparatus has a first measurement transmitter, by means of which the ascertained flow velocity is compared with the threshold value.
22. The method as claimed in claim 16, wherein: a measured value corresponding to the ascertained flow velocity is transmitted to a first measurement transmitter.
23. The method as claimed in claim 22, wherein: the measured value corresponding to the ascertained flow velocity is transmitted from a second measurement transmitter to the first measurement transmitter.
24. The method as claimed in claim 16, wherein: a resonant frequency is the eigenfrequency of the immersion body.
25. The method as claimed in claim 16, wherein: the method is performed at least at times during operation of the measuring apparatus.
26. The method as claimed in claim 24, wherein: the eigenfrequency of the immersion body is furnished in a first measurement transmitter.
27. The method as claimed in claim 24, wherein: the immersion body is provided with an identification means, from which the eigenfrequency of the immersion body can be learned.
28. The method as claimed in claim 24, wherein: the eigenfrequency of the immersion body is ascertained based on a photographic picture, preferably by means of an integral calculational method, such as, for example, the Ritz method.
29. The method as claimed in claim 27, wherein: the first measurement transmitter is connected with a superordinated unit via a communication connection; and the identification means and/or a photographic picture of the immersion body is transmitted to the superordinated unit, the ascertaining of the eigenfrequency of the immersion body is performed by the superordinated unit, and the eigenfrequency or a threshold value derived therefrom is transmitted to the first measurement transmitter.
30. A measuring apparatus having an immersion body, the measuring apparatus performing a method comprising: ascertaining a flow velocity; comparing the ascertained flow velocity with a threshold value, which corresponds to a critical loading, in particular to a resonant frequency of an immersion body of said measuring apparatus protruding into the flow; and outputting a report signaling reaching of a critical flow and/or frequency
Description
[0031] The invention will now be explained in greater detail based on the appended drawing, the sole figure of which shows as follows:
[0032]
[0033] The measuring apparatus 1 includes an immersion body 3 in the form of a protective tube, into which a measuring insert is insertable. The measuring insert, not shown, comprises, in such case, for example, at least a first measuring transducer for determining a physical and/or chemical variable.
[0034] Furthermore, a flow measuring apparatus 6 is provided, which comprises at least a second measuring transducer, which serves for determining the flow velocity of the measured material in the container 11. The flow measuring apparatus 6 can be, for example, one working according to the ultrasonic measuring principle, the magneto-inductive measuring principle, the thermal measuring principle, the vortex measuring principle or the Coriolis measuring principle.
[0035] As shown in
[0036] Based on the ascertained flow velocity, a loading of the immersion body 5 can be ascertained. This can occur, for example, based on a threshold value furnished in the evaluation unit 8. The threshold value can be furnished for this purpose, for example, in a memory unit of the evaluation unit 8.
[0037] The threshold value can then be compared with the flow velocity. This can occur, for example by determining a flow velocity corresponding to a critical loading of the immersion body and then determining a threshold value of the flow velocity.
[0038] The loading of the immersion body 3 can be a mechanical loading, especially of the material, of which the immersion body 3 is composed. This loading can result in material fatigue, material removal, etc.
[0039] The cause of the loading can be, for example, vortex shedding on the immersion body 3 occurring, for example, at a resonant frequency of the immersion body 3. The resonant frequency corresponds, in such case, to the eigenfrequency of the immersion body 3.
[0040] In calibration or testing of the immersion body 3, for example, that flow velocity can be experimentally determined, in the case of which due to the geometry of the immersion body 3 a vortex shedding 10 occurs on the immersion body 3 with the eigenfrequency of the immersion body 3. Correspondingly, a threshold value of the flow velocity can be set. The threshold value can lie, for example, in the vicinity of or below or above the corresponding flow velocity.
[0041] Likewise, based on the ascertained flow velocity, a vortex shedding frequency can be determined based, for example, on a furnished formula or mapping. This determined vortex shedding frequency can then be compared with a threshold value of the vortex shedding frequency. The threshold value of the vortex shedding frequency can be set as a function of the resonant frequency, respectively the eigenfrequency, of the immersion body, preferably such that the threshold value lies below the resonant frequency of the immersion body.
[0042] For determining the resonant frequency, respectively eigenfrequency, of the immersion body 3, in turn, a modal analysis of the immersion body 3, in the case of which it is preferably a protective tube, can be performed, for example, by means of a computer unit, which can, for example, be integrated in one of the measurement transmitters 2, 7 or the evaluation unit 8. The modal analysis can also be performed by a superordinated unit, i.e., for example, by a calculating unit arranged removed from the plant. A result of the modal analysis, such as, for example, the eigenfrequency of the immersion body 3, can then be transmitted to the measuring apparatus 1.
[0043] The modal analysis can occur, for example, based on a photographic picture or another type of recording of the immersion body 3. The eigenfrequency calculation can also be performed by the measurement transmitter 2, also referred to as a process transmitter.
[0044] Shown in
[0045] By means of an apparatus 9 for picture taking, then this identification means can be registered photographically. By means of a method for picture processing, then this information concerning the resonant frequency, the threshold value or the flow velocity can be extracted and transmitted to the evaluation unit or input there.
[0046] Alternatively, also a photographic picture of the immersion body 3 or at least a section of the same can serve as identification means. Also, based on a photographic picture of the total immersion body 3, for example, the resonant frequency of the immersion body can be ascertained. In this regard, for example, the Ritz method or the Rayleigh-Ritz method can be used to determine the eigenoscillations of the immersion body 3.
[0047] The resonance frequencies are preferably bending oscillations of the immersion body 3. Such an eigenfrequency of the immersion body can be calculated, for example, also by means of one or more geometrical and/or material parameters of the immersion body 3.
[0048] Especially also a remedial measure suppressing the, in given cases, arising resonances can be performed in the case of a flow velocity, which exceeds the threshold value. Also, a warning signal can be output on-site at the measuring point or in a superordinated unit, such as, for example, the control room or the evaluation unit. In this case, the registering of the oscillation frequency of the immersion body 3 can also occur by means of a sensor mounted directly on the immersion body 3 for registering oscillations of the immersion body 3.
[0049] The proposed invention can, thus, increase the operational safety of an immersion body 3, such as, for example, a protective tube.
[0050] Alternatively to determining the flow velocity, for example, by a flow sensor 6, also the pressure difference at two locations of the container 11 can be taken into consideration for determining a critical loading of the immersion body 3 based on a comparison with a threshold value.