SENSOR, AND CORIOLIS METER
20230020063 · 2023-01-19
Inventors
- Martin Josef Anklin (Dornach, CH)
- Reinhard Huber (Bad Säckingen, DE)
- Benjamin Schwenter (Ettingen, CH)
- Sandro Schwab (Oftringen, CH)
Cpc classification
G01K13/02
PHYSICS
G01F1/8472
PHYSICS
G01F1/8413
PHYSICS
International classification
Abstract
The invention relates to a sensor of a Coriolis meter for measuring the mass flow or the density of a medium flowing through a pipe, said sensor comprising: at least one measuring tube for conducting the medium, each having an inlet and an outlet; at least one exciter for exciting measuring tube oscillations; at least two sensors for detecting measuring tube oscillations; a support body for holding the measuring tube. The sensor has an RFID temperature sensor which is designed to determine a temperature of the measuring tube, the sensor having an RF transceiver which is designed to read out the temperature sensor.
Claims
1-10. (canceled)
11. A measurement sensor of a Coriolis measuring device for measuring the mass flow or the density of a medium flowing through a pipe, comprising: at least one measuring tube for conducting the medium, each having an inlet and an outlet; at least one exciter for exciting measuring tube oscillations; at least two sensors for detecting measuring tube oscillations; and a support body for holding the measuring tube; wherein the measurement sensor has an RFID temperature sensor which is designed to determine a temperature of the measuring tube; wherein the measurement sensor has an RF transceiver which is designed to read out the temperature sensor.
12. The measurement sensor according to claim 1, wherein the temperature sensor is attached to the measuring tube.
13. The measurement sensor according to claim 1, wherein the at least one measuring tube has at least one fixing plate on an inlet side of the measuring tube and at least one fixing plate on an outlet side of the measuring tube, wherein the at least one fixing plate of a respective side is designed to fix the measuring tube and to define an oscillation node, wherein the temperature sensor is attached to the measuring tube or a fixing plate.
14. The measurement sensor according to claim 1, wherein the transceiver is designed to read out the temperature sensor continuously or at intervals of less than 10 seconds.
15. The measurement sensor according to claim 1, wherein the at least one measuring tube and the temperature sensor are replaceable, wherein the measurement sensor has a coupling for coupling and decoupling at least one of the measuring tubes.
16. The measurement sensor according to claim 15, wherein the temperature sensor can be sterilized by gamma radiation without impairing its functionality.
17. The measurement sensor according to claim 1, wherein the temperature sensor is designed to transmit further information.
18. The measurement sensor according to claim 1, wherein the transceiver and the temperature sensor are at least partially surrounded by a shield, wherein the shield is designed to reduce a load on the exciter and the sensors due to electromagnetic radiation emitted by the transceiver.
19. The measurement sensor according to claim 1, wherein the transceiver is thermally decoupled from the measuring tube.
20. A Coriolis measuring device, comprising: a measurement sensor according to claim 1, an electronic measuring/operating circuit for operating the measurement sensor and for providing and outputting flow or density measurements, a housing for housing the electronic measuring/operating circuit.
Description
[0032]
[0033]
[0034]
[0035]
[0036] The measurement sensor has two measuring tubes 11, each having an inlet 11.1 and an outlet 11.2, which are held by a support body 14. The measuring tubes are designed to oscillate relative to one another. The measuring tube number shown here is an example; the measurement sensor can also have, for example, only one measuring tube or four measuring tubes which are arranged especially in two measuring tube pairs, wherein the measuring tubes of a pair are designed to oscillate relative to one another. The measurement sensor has an exciter 12, which is designed to excite oscillation of the measuring tubes. The measurement sensor has two sensors 13, which are designed to detect the measuring tube oscillations. A medium flowing through the measuring tubes influences the measuring tube vibrations in a characteristic manner, so that a mass flow and/or a density of the medium and/or a viscosity of the medium can be derived from the measurement signals of the sensors. The oscillation properties of the measuring tube are also influenced by a measuring tube temperature, so that a temperature sensor 15 is provided in order to detect the measuring tube temperature. In order to avoid further cabling, the temperature sensor is designed according to the invention as an RFID temperature sensor 15, which, as indicated here, can be attached to a measuring tube. An RFID transceiver 16 is designed to read out the temperature sensor 15. The readout preferably takes place quasi-continuously or at intervals of less than 10 seconds.
[0037]
[0038] In one embodiment, the temperature sensor can be sterilized by gamma radiation without impairing its functionality. In the case of “disposable” measuring devices, a sterilization of the measuring tubes by gamma radiation takes place before the measuring tubes are used. Ideally, the temperature sensor is sterilized together with the measuring tube in order to avoid contamination of the measuring tube by subsequent application of the temperature sensor.
[0039] In one embodiment, the temperature sensor is designed to transmit further information, for example device data, such as nominal width, calibration factor, zero point, device number and/or density coefficients. In this way, data required for correct operation of the Coriolis measuring device can be retrieved after insertion of a new measuring tube or new measuring tubes into a measurement sensor.
[0040] The measuring tube number shown here is an example; the measurement sensor can also have, for example, two measuring tubes or four measuring tubes which are arranged especially in measuring tube pairs, wherein the measuring tubes of a pair are designed to oscillate relative to one another.
[0041]
LIST OF REFERENCE SIGNS
[0042] 1 Coriolis measuring device [0043] 10 Measurement sensor [0044] 11 Measuring tube [0045] 11.1 Inlet [0046] 11.2 Outlet [0047] 12 Exciter [0048] 13 Sensor element [0049] 14 Support body [0050] 15 RFID temperature sensor [0051] 15.1 Sensor substrate [0052] 15.2 Coil [0053] 15.3 Microchip [0054] 16 RF transceiver [0055] 17 Fixing plate [0056] 18 Coupling [0057] 19 Shield [0058] 20 Electronic measuring/operating circuit [0059] 30 Housing