MEASUREMENT TUBE OF A CORIOLIS SENSING ELEMENT, CORIOLIS SENSING ELEMENT, AND CORIOLIS METER
20220291031 ยท 2022-09-15
Inventors
Cpc classification
G01N9/002
PHYSICS
G01F15/006
PHYSICS
International classification
G01F15/00
PHYSICS
Abstract
A measurement tube of a Coriolis sensing element for measuring a density and a mass flow rate of a medium flowing through a measurement tube includes a measurement tube wall and a measurement tube lumen, characterized in that the measurement tube wall has a sintered ceramic material or is produced from a sintered ceramic material.
Claims
1-11. (canceled)
12. A measurement tube of a Coriolis sensing element for measuring a density or a mass flow of a medium flowing through the measurement tube, wherein the measurement tube has a measurement tube wall and a measurement tube lumen, and the measurement tube wall has a sintered ceramic material or is produced from the sintered ceramic material.
13. The measurement tube according to claim 12, wherein the ceramic material is an LTCC ceramic material and includes at least one electrical or electronic component, wherein the electrical or electronic component is one of the following: a coil, a temperature sensor, a capacitor plate, a strain sensor, an electrical terminal configured for electrically connecting the aforementioned elements, and electrical conductor trace.
14. The measurement tube according to claim 13, wherein the component is applied to a measurement tube outer surface and/or integrated into the measurement tube wall and is separated from the measurement tube lumen by the measurement tube wall.
15. The measurement tube according to claim 13, wherein the electrical or electronic component is a coil, wherein the coil has a plurality of connecting pieces that connect partial segments and adjacent partial segments, wherein the partial segments are arranged offset with respect to a coil axis and are separated from one another by the LTCC ceramic materials, and wherein partial segments are designed as layers on or in the measurement tube wall.
16. The measurement tube according to claim 12, wherein a cross-section of an outer measurement tube surface of the measurement tube wall, and/or a cross-section of an inner measurement tube surface of the measurement tube wall delimiting the measurement tube lumen, follow one of the following geometric shapes: a circle, an ellipse, and a polygon with more than three corners.
17. The measurement tube according to claim 13, wherein the electrical or electronic component is produced from a metal microparticle paste, wherein the metal is silver and/or gold.
18. The measurement tube according to claim 13, wherein the LTCC ceramic material includes at least one of the following materials: DuPont 948, DuPont 951, Ferro A6, Heraeus CT700, Heraeus CT800, and Heraeus CT2000
19. The measurement tube according to claim 12, wherein a cross-sectional area of the measurement tube lumen is less than 5 square millimeters.
20. The measurement tube according to claim 15, wherein the coil is respectively connected to two electrical terminals for connecting electrical connecting lines.
21. A Coriolis measurement tube of a Coriolis meter for measuring a density or a mass flow rate of a medium flowing through a measurement tube, the Coriolis measurement tube comprising: the measurement tube having a measurement tube wall and a measurement tube lumen, wherein the measurement tube wall has a sintered ceramic material or is produced from the sintered ceramic material; at least one exciter for generating measurement tube vibrations; at least two sensors for detecting measurement tube vibrations; and a supporting element for supporting the measurement tube, wherein at least one component of the exciter and/or at least one respective component of the sensor is an integral part of the measurement tube.
22. A Coriolis meter for measuring a density or a mass flow rate of a medium flowing through a measurement tube, the Coriolis meter comprising: a Coriolis measurement tube, including: the measurement tube having a measurement tube wall and a measurement tube lumen, wherein the measurement tube wall has a sintered ceramic material or is produced from the sintered ceramic material; at least one exciter for generating measurement tube vibrations; at least two sensors for detecting measurement tube vibrations; and a supporting element for supporting the measurement tube, wherein at least one component of the exciter and/or at least one respective component of the sensor is an integral part of the measurement tube; an electronic measuring/operating circuit configured to operate the exciter and configured to provide measured values of the density and/or mass flow rate on the basis of the measurement tube vibrations detected by the sensors; and an electronics housing in which the electronic measuring/operating circuit is arranged.
Description
[0034] The invention will now be described with reference to exemplary embodiments.
[0035]
[0036]
[0037]
[0038]
[0039] Measurement tubes according to the invention are shown in
[0040]
[0041] A measurement tube production by means of sintering of a ceramic material is advantageous given measurement tubes in which a cross-sectional area of the measurement tube lumen is less than 5 square millimeters, and especially less than 3 square millimeters, and preferably less than 2 square millimeters. With other methods, such measurement tubes can only be manufactured in a more expensive and more complicated manner and allow less freedom in selecting the geometric design of measurement tubes.
[0042] A further advantage is that the ceramic material can be designed as an LTCC ceramic material and, as is shown in
[0043] The coil can, for example, be a component of an exciter or a sensor. Given a coil as an exciter component, the coil is charged with an electric current for the purpose of creating a magnetic field, and said coil can be prompted to excite measurement tube vibrations by means of a further magnetic field. Given a coil as a sensor component, the coil is moved relative to a magnetic field by measurement tube vibrations, and measurable electrical voltages are thus induced which can be used for an evaluation of measurement tube vibrations.
[0044] As an alternative to a coil as a sensor component, a capacitor plate may also be used as a sensor component, wherein measurement tube vibrations cause a relative movement of the capacitor plate with respect to a further capacitor plate of a sensor, which produces a change in capacitance of a capacitor comprising both capacitor plates. The change in capacitance can be used for an evaluation of measurement tube vibrations.
[0045] Alternatively, a strain sensor can also be used for detecting measurement tube vibrations, wherein such vibrations bring about a varying expansion of the strain sensor.
[0046] An ohmic resistance of the strain sensor is thereby usually measured.
[0047] Temperature sensors for the purpose of determining a media or measurement tube temperature can also be integrated into the measurement tube wall.
[0048] Advantageously, electrical terminals are provided for electrically connecting the further components integrated into the measurement tube which, for example, are arranged in a region of low vibration amplitude of the measurement tube vibrations. In this way, connections between electrical terminals and electrical connections, for example connecting cables, are exposed to low mechanical stresses. The components integrated into the measurement tube are thereby electrically connected to conductor traces 11.36 integrated into the measurement tube, wherein the conductor traces can travel on the outer measurement tube surface 11.11 or in the measurement tube wall. The person skilled in the art selects the number and arrangement of such electrical terminals as they deem appropriate, and is not limited to the embodiment shown in
[0049] The electronic components, and especially the coils 11.31, are respectively produced by means of a metal microparticle paste, wherein the metal microparticle paste especially comprises silver and/or gold. Au5062D, Au5063D as well as Ag 5081, or Ag5082 are customary in the trade.
[0050] The microparticle paste is thereby applied to a surface of the green body corresponding to the outer measurement tube surface, or is integrated into a region of the green body corresponding to the measurement tube wall during the production of the green body. For example, the microparticle paste can be applied to films prior to pressing. The sintering takes place after completion of the green body.
[0051] A coil, or electronic components in general, can thereby be applied only to the outer measurement tube surface 11.11 or, as is diagrammed at least in
[0052] A Coriolis sensing element or a Coriolis meter can thereby have only one measurement tube according to the invention or also multiple such measurement tubes. If a plurality of measurement tubes are present, for example, two measurement tubes can be configured to oscillate counter to one another. In this instance, electrical components of different measurement tubes of such a measurement tube pair can together form an exciter or a sensor, for example respectively comprising two capacitor plates or two coils. The electronic measuring/operating circuit is then designed to accordingly activate the electronic components, or to accordingly read out and evaluate electrical currents and/or electrical voltages.
[0053]
LIST OF REFERENCE SIGNS
[0054] 1 Coriolis meter
[0055] 10 Coriolis sensing element
[0056] 11 Measuring tube
[0057] 11.1 Measurement tube wall
[0058] 11.11 Outer measurement tube surface
[0059] 11.12 Inner measurement tube surface
[0060] 11.2 Measurement tube lumen
[0061] 11.3 Electronic component
[0062] 11.31 Coil
[0063] 11.311 Partial segment
[0064] 11.312 Connecting piece
[0065] 11.32 Temperature sensor
[0066] 11.33 Capacitor plate
[0067] 11.34 Strain sensor
[0068] 11.35 Electrical terminal
[0069] 11.36 Electrical conductor trace
[0070] 12 Exciter
[0071] 13 Sensor
[0072] 14 Supporting element
[0073] 77 Electronic measuring/operating circuit
[0074] 80 Electronics housing