TEMPERATURE-COMPENSATED DIELECTRIC-CONSTANT MEASURING DEVICE
20230304955 · 2023-09-28
Inventors
Cpc classification
International classification
Abstract
A high-frequency-based measuring device for determining a temperature-compensated dielectric constant of a medium includes a measuring probe having an electrically conductive inner conductor and an outer conductor. The inner conductor is rod-like along an axis. The inner wall of the outer conductor is symmetrical about the axis of the inner conductor and expands along the axis toward the medium. The measuring device includes a temperature sensor located in a first end region of the inner conductor, toward which end region the inner wall of the outer conductor expands. One of the temperature sensor terminals is at the potential of the inner conductor. The temperature of the medium is measured directly, without impairment of the high-frequency-based measurement of the dielectric constant. A highly accurate measurement of the dielectric constant and highly accurate temperature compensation are thereby made possible.
Claims
1-9. (canceled)
10. A measuring device for determining a temperature-compensated dielectric constant of a medium, comprising: a measuring probe including: an electrically conductive inner conductor which is rod-like at least in a portion along an axis; an outer conductor which is arranged around the inner conductor and includes an electrically conductive inner wall, wherein the inner wall is symmetrical about the axis such that the inner wall expands along the axis; and a temperature sensor located in a first end region of the inner conductor, toward which first end region the inner wall of the outer conductor expands, wherein the temperature sensor includes at least two electrical terminals, wherein the first terminal is at the potential of the inner conductor, wherein the measuring probe is designed such that the first end region of the inner conductor in which the temperature sensor is located is oriented toward the medium in the installed state of said measuring device; and a control/evaluation unit configured to determine a temperature of the medium via the second terminal of the temperature sensor, to couple a high-frequency electrical signal into the inner conductor or the outer conductor and to receive a corresponding received signal, and to determine, using the determined temperature and using the received signal, the dielectric constant of the medium in a temperature-compensated manner.
11. The measuring device in accordance with claim 10, wherein the control/evaluation unit is further configured to determine the dielectric constant of the medium using a phase position, using an amplitude, and/or using a transit time, including a group transit time or a phase transit time, of the received signal.
12. The measuring device in accordance with claim 10, wherein the control/evaluation unit is further configured to determine the dielectric constant of the medium by means of a pulse transit-time method, including by a Time Domain Reflectometry (TDR) method or a frequency modulated continuous wave (FMCW) method.
13. The measuring device in accordance with claim 10, wherein the inner wall of the outer conductor is symmetrical about the axis such that it expands conically, exponentially, or elliptically along the axis.
14. The measuring device in accordance with claim 10, wherein the temperature sensor is realized as a capacitive sensor or as a resistance-based sensor.
15. The measuring device in accordance with claim 10, wherein the control/evaluation unit is further configured to generate and evaluate the high-frequency electrical signal with a frequency of between 0.1 GHz and 30 GHz.
16. The measuring device in accordance with claim 10, wherein the inner conductor and/or the second terminal of the temperature sensor is/are contacted with the control/evaluation unit via a second end region of the inner conductor opposite the first end region of the inner conductor.
17. The measuring device in accordance with claim 10, wherein an electrically insulating filling with a dielectric constant of greater than 2 is introduced between the inner conductor and the outer conductor.
18. A method for determining a temperature-compensated dielectric constant of a medium comprising: providing a measuring device for determining the temperature-compensated dielectric constant of the medium, including: a measuring probe including: an electrically conductive inner conductor which is rod-like at least in a portion along an axis; an outer conductor which is arranged around the inner conductor and includes an electrically conductive inner wall, wherein the inner wall is symmetrical about the axis such that the inner wall expands along the axis; and a temperature sensor located in a first end region of the inner conductor, toward which first end region the inner wall of the outer conductor expands, wherein the temperature sensor includes at least two electrical terminals, wherein the first terminal is at the potential of the inner conductor, wherein the measuring probe is designed such that the first end region of the inner conductor in which the temperature sensor is located is oriented toward the medium in the installed state of said measuring device; and a control/evaluation unit configured to determine a temperature of the medium via the second terminal of the temperature sensor, to couple a high-frequency electrical signal into the inner conductor or the outer conductor and to receive a corresponding received signal, and to determine, using the determined temperature and using the received signal, the dielectric constant of the medium in a temperature-compensated manner; coupling the high-frequency signal into the measuring probe; decoupling a corresponding received signal from the measuring probe; determining the dielectric constant using at least the received signal; measuring the temperature via the temperature sensor; and compensating for temperature in the determined dielectric constant using the determined temperature.
Description
[0033] The invention is explained in more detail with reference to the following figures. The following are shown:
[0034]
[0035]
[0036] For a general understanding of the dielectric-constant measuring device 1 according to the invention, a schematic arrangement of the measuring device 1 on a container 3 filled with a medium 2 is shown in
[0037] The medium 2 may be liquids, such as beverages, paints, cement, or fuels, such as liquid gases or mineral oils. However, the use of the measuring device 1 for bulk material-type media 2, such as grain to be dried, is also conceivable. Depending on the application, the medium 2 can also be subjected in the container 3 to exothermic reactions, such as fermentation processes, in addition to drying processes. For this purpose, the container 3 can optionally be appropriately climate-conditioned, for example by means of a heating element 31 located on the container 3. Accordingly, the temperature of the medium 2 can deviate from room temperature at least during the respective process. Since, depending on the medium 2, the dielectric constant is strongly temperature-dependent, the measuring device 1 must therefore be designed to determine the dielectric constant of the medium 2 in a temperature-compensated manner.
[0038] The measuring device 1 according to the invention, by means of which the dielectric constant can be determined in a temperature-compensated manner, is based on determining the dielectric constant by means of high-frequency signals s.sub.HF, r.sub.HF. For example, transit-time-based measuring principles, such as the TDR method or FMCW method, can be implemented as measuring principles for determining the dielectric constant. In addition, however, amplitude-based or phase-based measuring principles may also be implemented. So that the corresponding near field of the high-frequency signal s.sub.HF interacts with the medium 2 for the determination of the dielectric constant, the measuring device 1 therefore comprises a measuring probe 11 oriented toward the medium, as is schematically illustrated in
[0039] The structure according to the invention of the measuring probe 11, by means of which a temperature compensation is enabled, is illustrated in more detail as a cross-sectional view in
[0040] As emerges from
[0041] In the embodiment of the measuring probe 11 shown in
[0042] From the height of the axis a at which the expansion of the outer conductor inner wall originates, the two conductors 111, 112 are separated by an insulation 114. In the embodiment variant shown in
[0043] For temperature compensation of the dielectric-constant measurement, a temperature sensor 113 is arranged in the end region of the rod-like inner conductor 111, said end region facing toward the medium 2. In the embodiment variant shown in
[0044] The temperature sensor 113 can be designed as a capacitive sensor or as a resistance-based sensor, in particular as a PT1000. Within the scope of the invention, it is only essential that the temperature sensor 113 as shown in
[0045] Via the other terminal 1132, the control evaluation unit 12 can determine the temperature directly at the location of the medium 2 by means of a corresponding evaluation signal s.sub.T. Using the determined temperature and using the previously determined dielectric constant of the medium 2, it is thereby possible for the control/evaluation unit 12 to very precisely compensate said dielectric constant with respect to the temperature, for example to room temperature. The control/evaluation unit 112 can, for example, perform the temperature compensation in that it compares the measured dielectric constant and the measured temperature to a look-up table or a compensation function which, for example, is obtained via medium-specific calibration measurements.
[0046] In the exemplary embodiment of the measuring probe 11 as shown in
LIST OF REFERENCE SIGNS
[0047] 1 Measuring device [0048] 2 Medium [0049] 3 Container [0050] 4 Superordinate unit [0051] 11 Measuring probe [0052] 12 Control/evaluation unit [0053] 31 Heating element [0054] 111 Inner conductor [0055] 112 Outer conductor [0056] 113 Temperature sensor, first end region [0057] 114 Second end region, insulation [0058] 1131 First terminal [0059] 1132 Second terminal [0060] r.sub.HF Received signal [0061] s.sub.HF High-frequency signal [0062] s.sub.T Signal of the temperature sensor