MEASURING TRANSDUCER AND MEASUREMENT DEVICE
20210310920 · 2021-10-07
Inventors
- Benjamin Schwenter (Breitenbach, CH)
- Marc Werner (Grenzach-Wyhlen, DE)
- Claude Hollinger (Aesch, CH)
- Martin Stucki (Pratteln, CH)
Cpc classification
G01N9/002
PHYSICS
G01F15/006
PHYSICS
G01F1/8413
PHYSICS
International classification
G01N9/00
PHYSICS
Abstract
The present disclosure relates to a measuring transducer of a measurement device for registering a mass flow or a density of a medium The measuring transducer includes a measuring tube, at least one exciter adapted to excite the measuring tube to execute oscillations, and two sensors adapted to register deflection of oscillations of the measuring tube. The exciter and the sensors each have a coil device including a circuit board with a first coefficient of thermal expansion. The coil device of the sensors or exciter are/is secured using a holder apparatus adapted to clamp the circuit board, wherein the circuit board is mechanically contacted by the holder apparatus using at least one holder element, wherein the holder element has a second coefficient of thermal expansion, wherein the first coefficient of thermal expansion and the second coefficient of thermal expansion differ from one another by less than 3*10.sup.−6/Kelvin.
Claims
1-11. (canceled)
12. A measuring transducer of a measurement device for registering a mass flow or a density of a medium flowing through at least one measuring tube of the measuring transducer, comprising: the at least one measuring tube having an inlet and an outlet and adapted to convey the medium between inlet and outlet; at least one exciter, which is adapted to excite the at least one measuring tube to execute oscillations; at least two sensors, which are adapted to register deflection of oscillations of at least one measuring tube; wherein at least one exciter as well as the sensors have, in each case, a coil device with, in each case, at least one coil, as well as, in each case, a magnet apparatus, wherein the magnet apparatuses are movable relative to their coil devices, and wherein the magnet apparatus and the coil device of an exciter, or sensor, interact with one another by means of magnetic fields, wherein the coil device has a circuit board with at least one circuit board layer, wherein the coil is arranged on or in at least one circuit board layer, wherein the circuit board has a first coefficient of thermal expansion, wherein the measuring transducer has a support body, which is adapted to hold the measuring tube, wherein at least one coil device of the sensors or the coil device of the exciter are/is secured using a holder apparatus to the support body or to a measuring tube, wherein the holder apparatus is adapted to clamp the circuit board, in order to hold the circuit board using lateral frictional interlocking, wherein the circuit board is mechanically contacted by the holder apparatus by means of at least one holder element of the holder apparatus, wherein the holder element has a second coefficient of thermal expansion, wherein the first coefficient of thermal expansion and the second coefficient of thermal expansion differ from one another by less than 3*10.sup.−6/Kelvin.
13. The measuring transducer of claim 12, wherein the circuit board is produced by a sintering process, wherein the circuit board comprises, for example, a ceramic material, and wherein the ceramic material is a low temperature cofired ceramic.
14. The measuring transducer of claim 12, wherein the holder element comprises at least one of the following materials: zirconium titanium, tantalum.
15. The measuring transducer of claim 12, wherein the first coefficient of thermal expansion is less than 9*10.sup.−6/Kelvin.
16. The measuring transducer of claim 12, wherein the circuit board is held using a screwed or clamped securement.
17. The measuring transducer of claim 12, wherein the holder element is secured to a holder apparatus body.
18. The measuring transducer of claim 16, wherein the circuit board includes a bore, in which a screw is arranged, which engages in a screw thread of a bore of the holder apparatus, wherein by means of the screw a compression is exerted on the circuit board.
19. The measuring transducer of claim 12, wherein the holder apparatus is secured to the support body.
20. The measuring transducer of claim 12, wherein the measuring transducer includes two manifolds, wherein a first manifold is adapted on an upstream side of the measuring transducer to receive a medium coming from a pipeline into the measuring transducer and to convey the medium to the inlet of the at least one measuring tube, wherein a second manifold is adapted to receive the medium coming from the outlet of the at least one measuring tube and to convey such back into the pipeline.
21. The measuring transducer of claim 12, wherein the measuring transducer includes two process connections, which are adapted to connect the measuring transducer into a pipeline.
22. A measuring device comprising: a measuring transducer, including: at least one measuring tube having an inlet and an outlet and adapted to convey medium between inlet and outlet; at least one exciter, which is adapted to excite the at least one measuring tube to execute oscillations; at least two sensors, which are adapted to register deflection of oscillations of at least one measuring tube; wherein at least one exciter as well as the sensors have, in each case, a coil device with, in each case, at least one coil, as well as, in each case, a magnet apparatus, wherein the magnet apparatuses are movable relative to their coil devices, and wherein the magnet apparatus and the coil device of an exciter, or sensor, interact with one another by means of magnetic fields, wherein the coil device has a circuit board with at least one circuit board layer, wherein the coil is arranged on or in at least one circuit board layer, wherein the circuit board has a first coefficient of thermal expansion, wherein the measuring transducer has a support body, which is adapted to hold the measuring tube, wherein at least one coil device of the sensors or the coil device of the exciter are/is secured using a holder apparatus to the support body or to a measuring tube, wherein the holder apparatus is adapted to clamp the circuit board, in order to hold the circuit board using lateral frictional interlocking, wherein the circuit board is mechanically contacted by the holder apparatus by means of at least one holder element of the holder apparatus, wherein the holder element has a second coefficient of thermal expansion, wherein the first coefficient of thermal expansion and the second coefficient of thermal expansion differ from one another by less than 3*10.sup.−6/Kelvin. an electronic measuring/operating circuit, wherein the electronic measuring/operating circuit is adapted to operate the sensors and the exciter, and is connected with such by means of electrical connection lines, wherein the at least one electrical connection is led by means of a cable guide to the electronic measuring/operating circuit, wherein the electronic measuring/operating circuit is further adapted to ascertain mass flow measured values and/or density measurement values, and wherein the measurement device has an electronics housing for housing the electronic measuring/operating circuit.
Description
[0020] The invention will now be described based on examples of embodiments presented in the appended drawing, the figures of which show as follows:
[0021]
[0022]
[0023]
[0024]
[0025]
[0026] Those skilled in the art are not limited to the numbers of measuring tubes, oscillation exciters and oscillation sensors discussed here. The embodiment shown here is, in this regard, by way of example.
[0027] The measurement device includes an electronic measuring/operating circuit 210, which is adapted to operate the oscillation exciter as well as the oscillation sensors, and to calculate and to output mass flow- and/or density measurement values of the medium. The electronic measuring/operating circuit is, in such case, connected by means of electrical connections 230 with the oscillation sensors as well as the oscillation exciter. The measurement device includes an electronics housing 220, in which the electronic measuring/operating circuit is arranged. For determining mass flow, the measurement device utilizes the Coriolis effect, which acts on the flowing medium due to measuring tube oscillations, wherein the flow of measuring tube influences oscillations characteristically.
[0028]
[0029]
[0030]
[0031]
[0032] The holder apparatus bodies shown in
[0033] According to the invention, the circuit board has a first coefficient of thermal expansion and the at least one holder element a second coefficient of thermal expansion, wherein the first coefficient of thermal expansion and the second coefficient of thermal expansion differ from one another by less than 3*10.sup.−6/Kelvin, and, especially, less than 2*10.sup.−6/Kelvin and preferably less than 1.5*10.sup.−6/Kelvin. In this way, it is assured that the circuit board 2 is retained, on the one hand, by means of lateral frictional interlocking, while temperature change related lateral stresses remain so small that the circuit board remains intact. Such is especially advantageous in the case of brittle circuit board materials, such as, for example, a ceramic.
[0034] Preferably, the circuit board is produced by a sintering process, wherein the circuit board comprises, for example, a ceramic material, wherein the ceramic material is especially a low temperature cofired ceramic. Low temperature cofired ceramics (LTCC) are especially suited as foundation for producing coil devices due to good properties as regards low disturbance of coil properties and good applicability of electrically conductive traces, which can be used for forming coils. A disadvantage of such ceramics is, however, their brittle character compared with metals and, thus, their increased sensitivity to mechanical loading. By selecting the first coefficient of thermal expansion and the second coefficient of thermal expansion according to the invention, this disadvantage can, however, be avoided.
[0035]
[0036] In case the coil devices are secured to the measuring tube, such as shown in the case of the left coil device, the electrical connection lines 230 can be led along the measuring tube. In case the coil devices are secured to the support body, such shown as in the case of the right coil device, the electrical connecting lines can be led at the measuring tube along the support body.
[0037] Alternatively, the measuring transducer can have, for example, only one measuring tube, wherein a magnet apparatus of a particular sensor is secured, for example, to the measuring tube, and its coil device to the support body, or vice versa.
[0038] In case the coils are secured to the support body, each measuring tube includes per oscillation sensor a magnet apparatus with, in each case, at least one magnet.
[0039] The different securements of the coil devices shown in
LIST OF REFERENCE CHARACTERS
[0040] 1 coil device [0041] 2 circuit board [0042] 3 circuit board layer [0043] 4 coil [0044] 4.1 first coil end [0045] 4.2 second coil end [0046] 4.3 electrically conductive trace [0047] 5 contacting element [0048] 5.1 first contacting element [0049] 5.2 second contacting element [0050] 6 bore [0051] 7 magnet apparatus [0052] 10 exciter [0053] 11 sensor [0054] 100 measuring transducer [0055] 110 measuring tube [0056] 111 inlet [0057] 112 outlet [0058] 120 support body [0059] 131 holder apparatus [0060] 132 holder element [0061] 133 screw [0062] 134 bore of the holder apparatus [0063] 135 screw thread of the bore of the holder apparatus [0064] 136 holder apparatus body [0065] 140 manifold [0066] 141 first manifold [0067] 142 second manifold [0068] 150 process connection [0069] 151 flange [0070] 200 measurement device [0071] 210 electronic measuring/operating circuit [0072] 220 electronics housing [0073] 230 electrical connection lines