METHOD FOR MONITORING A FLOW OF A MEDIUM BY MEANS OF A CORIOLIS MASS FLOWMETER AND A DIFFERENTIAL PRESSURE MEASUREMENT DEVICE
20230032534 ยท 2023-02-02
Inventors
Cpc classification
International classification
Abstract
A method for monitoring flow of a medium by means of a pressure difference measuring device and a Coriolis mass flowmeter having two oscillators, which comprise, in each case, a bent measuring tube pair, which are arranged on top of one another and connected for parallel flow between the two pressure measuring points of the pressure difference measuring device, comprising steps as follows: Registering a pressure difference between the first pressure measuring point and the second pressure measuring point; registering a first density measured value based on at least a first oscillation frequency of the first oscillator; registering a second density measured value based on at least a second oscillation frequency of the second oscillator; ascertaining a flow measured value based on the pressure difference, when a difference between the first density measured value and the second density measured value is less than a density difference limit value.
Claims
1-8. (canceled)
9. A method for monitoring flow of a medium, which includes at least one liquid phase, using a Coriolis mass flowmeter and a pressure difference measuring device, which is adapted to ascertain a pressure difference between a first pressure measuring point and a second pressure measuring point of a pipeline, wherein the Coriolis mass flowmeter is arranged between the first pressure measuring point and the second pressure measuring point of the pipeline, wherein the Coriolis mass flowmeter serves as differential pressure producer, wherein the first pressure measuring point is arranged between a pressure source and the Coriolis mass flowmeter, wherein the second pressure measuring point is arranged between the Coriolis mass flowmeter and a pressure sink; wherein the Coriolis mass flowmeter includes at least two oscillators with, in each case, at least one bent measuring tube, wherein the bent measuring tubes have, in each case, a low point, which is arranged relative to a local gravitational field at the deepest point of the measuring tube, wherein the measuring tubes of the oscillators are arranged between two manifolds, as a result of which the measuring tubes are connected for parallel flow, wherein a first low point of a measuring tube of a first oscillator is arranged above a second low point of a measuring tube of a second oscillator, wherein the method comprises steps as follows: registering a pressure difference between the first pressure measuring point and the second pressure measuring point; registering a first density measured value based on at least a first oscillation frequency of the first oscillator; registering a second density measured value based on at least a second oscillation frequency of the second oscillator; and ascertaining a flow measured value based on the pressure difference, when a difference between the first density measured value and the second density measured value is less than a density difference limit value.
10. The method as claimed in claim 9, wherein the density difference limit value is a function of density of the medium.
11. The method as claimed in claim 9, wherein the density difference limit value is a function of gas charge of the medium.
12. The method as claimed in claim 11, wherein the gas charge is detected based on density fluctuations, and/or damping of measuring tube oscillations, or fluctuation of the damping.
13. The method as claimed in claim 9, wherein the first measuring tube and the second measuring tube have, in each case, a measuring tube centerline, wherein the density difference limit value is a function of vertical separation the measuring tube centerlines at the low point of the measuring tubes.
14. The method as claimed in claim 9, wherein the ascertaining of the flow measured value based on the pressure difference comprises checking whether the pressure difference exceeds a threshold value, wherein a flow of zero is assumed below the threshold value.
15. The method as claimed in claim 14, wherein the threshold value amounts to no greater than 30 mbar.
16. The method as claimed in claim 9, wherein a valve is arranged between the second pressure measuring point and the pressure sink.
Description
[0014]
[0015]
[0016]
[0017]
[0018] The problem, to which the invention is directed, is explained based on
[0019] For this, the invention utilizes, at least partially, the relationships shown in
[0020] The data in
[0021]
[0022]
[0023] As a result, it can, thus, be decided based on the density deviations and the difference between the dampings of the measuring tube oscillations, whether a pressure difference between the measuring points indicates flow or no flow.
[0024] An actual density difference can also occur when a gas-charged liquid undergoes a stratification in the pipeline, wherein in such case a lower density is to be expected in the upper measuring tube pair. In this case, however, with flow of the gas charge corresponding density fluctuation should be able to be detected. Moreover, the gas charge can be characterized with the so-called multifrequency technology. In the absence of these features, it can be assumed that the liquid is not flowing.
[0025] When applying the above principles, the method of the invention can be implemented in the example of an embodiment shown in
[0026] The method 100 begins with registering in step 110 a pressure difference between a first pressure measuring point and a second pressure measuring point, wherein a Coriolis mass flowmeter of