CA2324172A1 - Fill level detector - Google Patents

Fill level detector Download PDF

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Publication number
CA2324172A1
CA2324172A1 CA002324172A CA2324172A CA2324172A1 CA 2324172 A1 CA2324172 A1 CA 2324172A1 CA 002324172 A CA002324172 A CA 002324172A CA 2324172 A CA2324172 A CA 2324172A CA 2324172 A1 CA2324172 A1 CA 2324172A1
Authority
CA
Canada
Prior art keywords
substance
electrical conductor
fill
level detector
conductor
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Abandoned
Application number
CA002324172A
Other languages
French (fr)
Inventor
Joseph Neven
Achim Bletz
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Krohne SAS
Original Assignee
Krohne SAS
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority claimed from DE19958584A external-priority patent/DE19958584C1/en
Application filed by Krohne SAS filed Critical Krohne SAS
Publication of CA2324172A1 publication Critical patent/CA2324172A1/en
Abandoned legal-status Critical Current

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Classifications

    • GPHYSICS
    • G01MEASURING; TESTING
    • G01FMEASURING VOLUME, VOLUME FLOW, MASS FLOW OR LIQUID LEVEL; METERING BY VOLUME
    • G01F23/00Indicating or measuring liquid level or level of fluent solid material, e.g. indicating in terms of volume or indicating by means of an alarm
    • G01F23/22Indicating or measuring liquid level or level of fluent solid material, e.g. indicating in terms of volume or indicating by means of an alarm by measuring physical variables, other than linear dimensions, pressure or weight, dependent on the level to be measured, e.g. by difference of heat transfer of steam or water
    • G01F23/28Indicating or measuring liquid level or level of fluent solid material, e.g. indicating in terms of volume or indicating by means of an alarm by measuring physical variables, other than linear dimensions, pressure or weight, dependent on the level to be measured, e.g. by difference of heat transfer of steam or water by measuring the variations of parameters of electromagnetic or acoustic waves applied directly to the liquid or fluent solid material
    • G01F23/284Electromagnetic waves

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  • Physics & Mathematics (AREA)
  • Electromagnetism (AREA)
  • Thermal Sciences (AREA)
  • Fluid Mechanics (AREA)
  • General Physics & Mathematics (AREA)
  • Measurement Of Levels Of Liquids Or Fluent Solid Materials (AREA)
  • Measurement Of Current Or Voltage (AREA)

Abstract

There is disclosed a fill-level detector, operating by the radar principle, for gaging the fill level of the lower of two substances filled into and layered one atop the other in a container. The detector incorporates a first electrical conductor and a second electrical conductor which conductors extend parallel to each other in an essentially straight direction and protrude into the lower substance with a generator mounted at the end of the first electrical conductor and, respectively, at the end of the second electrical conductor situated outside the lower substance and outside the upper substance for generating and transmitting an electromagnetic signal, and with a transducer mounted at the end of the first electrical conductor and, respectively, of the second electrical conductor outside the first substance and the second substance for capturing a reflected portion of the electromagnetic signal. The electromagnetic signal can be coupled into the lower substance at the end of the first electrical conductor situated in the lower substance and a portion of the electromagnetic signal reflected at the interface between the lower substance and the upper substance can be captured by the transducer. In this fashion, it is possible in the case of two substances layered one atop the other in the container to also determine the fill level of the lower substance even when the upper substance displays a very high dielectric constant.

Description

Fill Level Detector This invention relates to a fill-level detector employing the radar principle for gaging the level of the lower of two substances layered one atop the other within a container, said detector incorporating a first electrical conductor and a second electrical conductor, both extending parallel to each other in an essentially straight direction and protruding into the lower substance; a generator positioned outside the lower and the upper substance at the end of the first electrical conductor and, respectively, of the second electrical conductor for generating and transmitting an electromagnetic signal; and a transducer provided outside the first and the second substance at the end of the first electrical conductor and, respectively, of the second electrical conductor, for detecting a reflected portion of the electromagnetic signal.
Fill-level detectors of the type described above are currently being marketed by Krohne, S-A under such trade names as Reflex-Radar BM 100. The detection process of this type of fill-level gaging device, operating by the radar principle, is based on TDR
(time domain reflectometry) measurements, a concept which has been used for instance in cable testing and which resembles that of radar equipment. For example, an extremely short electric pulse in one of these TDR fill-level detectors is guided along two essentially straight electrical conductors into a container holding a substance such as a liquid, a powder or a granular material whose fill level is to be determined.
The short electric pulse transmitted into the container via the two electrical conductors is reflected by the surface of the substance and the reflected portion of the short electric pulse is captured by a transducer in the detector system. The reflected portion of the short electric pulse is a function of the relative dielectric constant or permitivity of the substance and increases with the augmentation of the latter. The runtime of the signal is proportional to the distance between the pulse generator, i.e. the transducer, and the surface of the substance in the container. Varying environmental conditions, whether a rising or falling atmospheric pressure or temperature, have no effect on the accuracy of the TDR
fill-level detector. Moreover, the runtime of the signal is not influenced by the dielectric constant of the substance whose fill level is to be measured.
Apart from the detection of the fill level of one given substance in a container, however, there are applications which require the determination of the fill level of two substances layered one on top of the other. Such stratification can occur when the substances direr in terms of their intrinsic density. Performing such measurements with a conventional TDR fill-level detector mounted on top of the container is possible without difficulty only if the lower-density substance also has the lower dielectric value, meaning that the substance forming the upper layer has a lower dielectric coefficient than the substance underneath it.
As in the case described further above, the measurement can be obtained in a way similar to that for a regular fill-level determination in that a short electric pulse is generated and guided into the layered substances via the two electrical conductors protruding into them. In the process, a certain portion of the short electric pulse is reflected off the surface of the upper substance while the remaining portion of the short electric pulse penetrates into the upper layer and continues on within the same, with the propagation rate of that residual pulse traveling through the upper layer diminishing as a function of the dielectric coe~cient of the upper substance. The portion of the short electric pulse continuing on through the upper layer is then partly reflected at the interface between the upper and the lower substance while a small percentage of the residual pulse penetrates into the lower substance. However, given the high dielectric coefficient of the lower substance, most of the residual pulse that passed through the upper layer is reflected at the interface between the upper and the lower layer, thus allowing that reflected residual pulse to be detected by the transducer. If the dielectric coefficient or constant of the upper substance is known, it is possible to determine the fill level of both the upper and, respectively, the lower substance.
However, in cases where the upper layer is the substance with the higher dielectric coefficient, the portion of the short electric pulse reflected off its surface is typically large enough that the portion of the short electric pulse effectively penetrating into the upper substance and potentially reflected at the interface between the upper and the lower layer is too insignificant for a reliable TDR measurement. Where that is the case, any measurement employing a conventional TDR fill-level detector is possible only if the TDR fill-level detector is mounted not on top of the container but at its bottom. Only then would the short electric pulse "see" the substance with the lower dielectric coefficient first, i.e. before it impinges on the substance having the higher dielectric coefficient at whose interface with the lower dielectric coefficient the major portion of the short electric pulse would be reflected. However, mounting a TDR fill-level detector underneath the container is not only structurally complex, if at all possible, but it can also entail serious safety hazards.
It is therefore the objective of this invention to provide a fill-level detector which can be mounted on top of a container, which operates by the radar principle and which permits the gaging of the fill level of the lower of two substances layered in the container one atop the other, even when the upper substance has a lower density but a higher dielectric coefficient than the lower substance.
The fill-level detector according to this invention which solves the problem referred to and described above, is characterized in that the electromagnetic signal can be coupled into the lower substance at the end of the first electrical conductor positioned in the lower layer and that a portion of the electromagnetic signal reflected at the interface between the upper and the lower substance can be detected by the transducer.
For two layered substances, the invention thus provides for the electromagnetic signal to be coupled directly into the lower substance and for the portion of the electromagnetic signal that is reflected at the interface between the lower and the upper substance to be detectable, so that, when the dielectric coefficient of the lower substance is known, the fill level of the latter can be determined. The strong reflection of the electromagnetic signal at the point of transition to the upper substance with the high dielectric coefficient is thus utilized for the measurement and the electromagnetic signal, unlike that in conventional TDR fill-level detectors, is not attenuated before it reaches the lower substance.
In a preferred, embodiment according to this invention, the electromagnetic signal emanating from the generator can be coupled into the first electrical conductor and transmitted through that conductor to the end of the latter that is positioned in the lower substance without the signal making contact with the upper and the lower substance.
Since in the first electrical conductor the electromagnetic signal is propagated at the speed of light, its runtime in the first electrical conductor can be easily determined so that, when the dielectric coefficient of the lower substance is known, the fill level of the latter can be easily calculated based on the total runtime of the electromagnetic signal and its reflected portion. The TDR fill-level detector according to this invention is preferably further enhanced in that the electromagnetic signal and its portion that is reflected at the interface between the lower and the upper substance can be guided in the lower substance between the two electrical conductors.
For simplifying the coupling of the electromagnetic signal into the first electrical conductor, that first electrical conductor is preferably hollow and ideally in the form of a rigid tube. The fill-level detector according to this invention can preferably be further enhanced in that the first conductor contains an inner conductor which is electrically insulated from the inner surface of the first electrical conductor. It may suffice to provide such insulation by spacing the inner conductor in the first electrical conductor from the inner surface of the latter. Preferably, however, the inner conductor inside the first electrical conductor is provided with an insulating jacket, preferably of PTFE. With particular preference, the inner conductor within the first electrical conductor is so designed that uniform impedance prevails over essentially the entire length of the inner conductor and the first electrical conductor.
In a preferred, embodiment of the TDR fill-level detector according to this invention, the electromagnetic signal can be coupled into the inner conductor at the end of the first electrical conductor situated outside the lower and the upper substance, it can then be decoupled from the inner conductor at the end of the first electrical conductor positioned in the lower substance and transferred into the second electrical conductor, following which it can be guided in the lower substance between the first electrical conductor and the second electrical conductor. At the end of the first electrical conductor positioned in the lower layer, the inner conductor is preferably connected in electrically conductive fashion to the second electrical conductor.
Preferably, for increased structural strength of the TDR fill-level detector according to this invention, at least one horizontal brace is provided between the first electrical conductor and the second electrical conductor. Of course, any such cross brace will normally have to be electrically insulating. However, in the preferred, embodiment of the TDR fill-level detector according to this invention, the brace is provided at the end of the first or, respectively, second electrical conductor positioned in the lower substance and is then utilized as an electrical connection, insulated from the first electrical conductor, between the inner conductor and the second electrical conductor.
Finally, in a preferred embodiment of the TDR fill-level detector according to this invention, the end of the first electrical conductor situated in the lower substance is provided with a seal preferably consisting of PTFE and/or Viton.
There are numerous ways in which the design of the TDR fill-level detector according to this invention can be configured and further enhanced. In this context, reference is made to the dependent claims and to the detailed description of a preferred embodiment of this invention in conjunction with the drawings, in which:
Fig. 1 is a schematic illustration of a TDR fill-level detector, mounted on top of a container, according to a preferred embodiment of this invention, and Fig. 2 shows schematically the flow of the measuring process employing a TDR
fill-level detector according to the preferred embodiment of this invention.
Fig. 1 is a schematic, cross-sectional view of a TDR fill-level detector according to a preferred embodiment of this invention, mounted on top of a container 1 filled with a substance 2 over which a substance 3 is layered. The dielectric coefficient E~, of the lower substance 2 is less than the dielectric coefficient E~Z of the upper substance. In typical applications of the fill-level detector according to this invention, Er2 has a value of 20 and higher. Above the upper substance 3 there is a gas such as air with a dielectric coefficient of s~3. The TDR fill-level detector according to the preferred embodiment of this invention incorporates a first electrical conductor 4 and a second electrical conductor 5.
Positioned at their ends outside the substance 2 is a partly outlined detector enclosure 6 of the TDR fill-level detector. The detector enclosure 6 houses a generator, not shown, serving to generate and transmit an electromagnetic signal which, in the preferred embodiment here described, is a short electric pulse used for the TDR fill-level gaging, as well as a transducer, not shown, for capturing a reflected portion of the short electric pulse.
Inside the first electrical conductor 4 is an inner conductor 7 which is insulated from the inner wall of the first electrical conductor 4 by means of a PTFE
jacket 8. By way of a cross brace 9, the inner conductor 7 is connected in electrically conductive fashion to the end, positioned in the substance 2, of the second electrical conductor S. A
spacer 11, provided with a seal 10, serves the dual purpose of sealing the inside of the first electrical conductor 4 and insulating the first electrical conductor 4 from the firmer conductor 7 and the second electrical conductor 5. The first electrical conductor 4, the second electrical conductor 5 and the cross brace 9 consist of high-grade stainless steel, i.e. the first electrical conductor 4 is a rigid, metallic, tubular element.
This allows a short electric pulse produced by the generator to be coupled into the inner conductor 7 inside the first electrical conductor 4 and to travel through the latter all the way to its end situated in the substance 2, without the short electric pulse making contact with the substance 2 or substance 3. Its rate of propagation thus corresponds to the speed of light.
At the end of the first electrical conductor 4 in the substance 2, the short electric pulse is decoupled from the inner conductor 7 and transferred via the cross brace 9 to the second electrical conductor 5.
At the cross brace 9, exiting from the inner conductor 7, the short electric pulse which up to this point has traveled in a downward direction, is practically reflected upwards, reversing its path. The cross brace essentially serves as a "minor"
which reverses the direction of travel of the short electric pulse. The short electric pulse then continues upward within the lower substance 2 between the second electrical conductor 5 and the first electrical conductor 4, now serving as a reference conductor, its rate of propagation diminished as a function of the dielectric coefficient E~,.
The actual flow of the TDR fill-level measuring process employing a TDR fill-level detector according to a preferred embodiment of this invention is schematically shown in Fig. 2 in time-sequential sub-steps t, to t,o. At time t,, the generator housed in the detector enclosure 6 produces a short electric pulse. Without making electrical contact with the first electrical conductor 4, the short electric pulse is coupled into the inner conductor 7 which in insulated fashion extends within the first electrical conductor 4. In essence, the core conductor of the coaxial cable which serves to forward the short electric pulse emanating from the pulse generator is thus directly connected to the inner conductor 7. The inner conductor 7, jointly with the first electrical conductor 4, essentially constitutes an extension of the coaxial cable carrying the short electric pulse from the generator. At the speed of light v,, the short electric pulse travels inside the first electrical conductor 4 to the end of the latter, situated in the lower substance. As is evident from the time indications t2, t3 and t4, the rate of propagation of the short electric pulse within the first electrical conductor 4 remains at the speed of light v, regardless of where the short electric pulse happens to be, i.e. regardless of which substance surrounds the first electrical conductor 4 at any one time, since the short electric pulse, while in the first electrical conductor 4, does not make contact with the externally surrounding substances. At time is the short electric pulse reaches the end of the first electrical conductor 4 situated in the lower substance 2 at which point it is decoupled and transferred to the second electrical conductor 5 which is connected in electrically conductive fashion to the inner conductor 7 by way of the cross brace 9. The short electric pulse is then fiu~ther propagated at the reduced rate va corresponding to the dielectric coefficient s~, of the lower substance 2 and travels upward between the first electrical conductor 4 and the second electrical conductor S. At time tb, the short electric pulse reaches the interface between the lower substance 2 and the upper layer of substance 3.
CA 02324172 2000-10-23 _ Due to the high dielectric constant s~z of the substance 3, typically more than 20, only a small portion of the short electric pulse penetrates into the substance 3 while the major portion of the short electric pulse is reflected at the interface between the substance 2 and the substance 3, resuming its downward path at the rate vz corresponding to the dielectric constant E~, of the substance 2. At the end of the first electrical conductor 4, situated in the substance 2, the reflected portion of the short electric pulse is then coupled back into the inner conductor 7 within the first electrical conductor 4 where it travels along the inner conductor 7, at the speed of light v,, over the entire distance from the end of the first electrical conductor 4 in the substance 2 to the transducer housed in the detector enclosure 6. Finally, at time t,o, the reflected portion of the electric pulse is captured by the transducer.
Since the length of the first electrical conductor, meaning the distance from the generator or transducer to the end of the first electrical conductor 4 in the substance 2, the dielectric constant s~, of the lower substance 2 and the speed of light v, are known factors, the total runtime of the short electric pulse and that of its reflected portion from the generator to the interface between the lower substance 2 and the upper substance 3 and _ back to the transducer will be indicative of the fill level of the second substance 2.
If the dielectric constant s~, of the substance 2 is not known from the start, it can be determined by means of a conventional TDR fill-level gaging procedure, provided the substance 3 is not yet layered on top of the substance 2, or by another conventional process such as a capacitive measurement, or it can be determined by means of the process according to this invention if the fill-level of the lower substance 2 is known.

Hence, the only calibration parameters required for installing the TDR fill-level detector according to this invention are the dielectric constant of the lower substance 2 and the length of the first electrical conductor 4.
The preferred embodiment of this invention, described above, pertains to a TDR
fill-level detector, i.e. a TDR fill-level gaging procedure employing short electric pulses as the electromagnetic signal. Of course, this invention is equally suitable for use with a p fill-level detector or fill-level gaging procedure employing as the electromagnetic signal continuous electromagnetic waves, thus including for instance an FM-CW
process.

Claims (17)

1. A fill-level detector, operating by the radar principle, for gaging the fill level of the lower of first and second substances filled into and layered one atop the other in a container, said detector comprising: a first electrical conductor and a second electrical conductor, which conductors extend parallel to each other in an essentially straight direction and with a first end respectively protrude into the lower substance;
a generator for generating and transmitting an electromagnetic signal, the generator being mounted at a second end of the first and second electrical conductors respectively, which second end is situated outside the lower substance and outside the upper substance; and a transducer for capturing a reflected portion of the electromagnetic signal, the transducer being mounted at the second end of the first and second electrical conductors, respectively;
wherein said transducer is constructed for capturing a portion of the electromagnetic signal which has been coupled into the lower substance at the first end of the first electrical conductor and reflected at the interface between the lower substance and the upper substance.
2. The fill-level detector as in claim 1, further comprising a means for determining the runtime of the electromagnetic signal from the moment said signal is emitted to the moment a portion of the electromagnetic signal reflected at the interface between the lower substance and the upper substance is detected, by the transducer.
3. The fill-level detector as in claim 1 or 2, wherein the first electrical conductor is constructed for the electromagnetic signal produced by the generator to the first end situated in the lower substance, without the signal making contact with the upper substance or the lower substance.
4. The fill-level detector as in one of the claims 1 to 3, wherein the electromagnetic signal and its portion that is reflected at the interface between the lower substance and the upper substance is guided within the lower substance between the first electrical conductor and the second electric conductor.
5. The fill-level detector as in one of the claims 1 to 4, wherein the first electrical conductor is hollow and is preferably in the form of a rigid tubular element.
6. The fill-level detector as in claim 5, wherein the first electrical conductor contains an inner conductor which is electrically insulated from the inner surface of the first electrical conductor.
7. The fill-level detector as in claim 6, wherein the inner conductor within the first electrical conductor is surrounded by an insulating jacket.
8. The fill-level detector as in claim 7, wherein the insulating jacket is made of PTFE.
9. The fill-level detector as in one of claims 6 to 8, wherein the electromagnetic signal is coupled into the inner conductor at the second end of the first electrical conductor situated outside the lower substance and the upper substance, decoupled from the inner conductor at the first end of the first electrical conductor situated in the lower substance, and guided in the lower substance to be transferred within the lower substance to the second electrical conductor.
10. The fill-level detector as in claim 9, wherein at the first end of the first electrical conductor the inner conductor is connected in electrically conductive fashion to the second electrical conductor.
11. The fill-level detector as in one of the claims 1 to 10, wherein at least one horizontally connecting brace is provided between the first electrical conductor and the second electrical conductor.
12. The fill-level detector as in claim 11, wherein the horizontal brace is provided at the first end of the first and second electrical conductors, respectively.
13 13. The fill-level detector as in claim 12, wherein the horizontal brace constitutes an insulated electrical connection, insulated from the first electrical conductor, between the inner conductor and the second electrical conductor.
14. The fill-level detector as in one of the claims 1 to 13, wherein, at its first end situated in the lower substance, the first electrical conductor is provided with a seal.
15. The fill-level detector as in claim 14, wherein the seal consists of at least one of PTFE and Viton.
16. The fill-level detector as in one of the claims 1 to 15, wherein the first electrical conductor, the second electrical conductor, the inner conductor or the horizontally connecting brace consist of high-grade stainless steel.
17. The fill-level detector as in claim 16, wherein the horizontally connecting brace consists of high-grade stainless steel.
CA002324172A 1999-11-08 2000-10-23 Fill level detector Abandoned CA2324172A1 (en)

Applications Claiming Priority (4)

Application Number Priority Date Filing Date Title
DE19953709 1999-11-08
DE19953709.7 1999-11-08
DE19958584.9 1999-12-04
DE19958584A DE19958584C1 (en) 1999-11-08 1999-12-04 Level measurement unit, comprises primary and secondary electrical conductors, a container for two media, an electromagnetic signal generator, and a transducer

Publications (1)

Publication Number Publication Date
CA2324172A1 true CA2324172A1 (en) 2001-05-08

Family

ID=26055475

Family Applications (1)

Application Number Title Priority Date Filing Date
CA002324172A Abandoned CA2324172A1 (en) 1999-11-08 2000-10-23 Fill level detector

Country Status (4)

Country Link
EP (1) EP1098176B1 (en)
AT (1) ATE263361T1 (en)
CA (1) CA2324172A1 (en)
DK (1) DK1098176T3 (en)

Family Cites Families (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
IT961071B (en) * 1971-09-04 1973-12-10 Cnen PROBE AND INSTALLATION FOR MEASURING THE LEVELS OF INTERFACES OF FLUIDS AND OF THE CONSTANTS OF THE ELETTERS AND OF THE SAME
FR2624968A1 (en) * 1987-12-16 1989-06-23 Whessoe Sa DEVICE FOR MEASURING STORAGE PARAMETERS, SUCH AS LEVEL AND TEMPERATURE, OF LIQUIDS OR FLUIDS OF DIFFERENT DENSITY IN A RESERVOIR
US6121780A (en) * 1996-10-07 2000-09-19 Cruickshank; William T. Material interface level sensing
US5943908A (en) * 1997-09-08 1999-08-31 Teleflex Incorporated Probe for sensing fluid level
US5898308A (en) * 1997-09-26 1999-04-27 Teleflex Incorporated Time-based method and device for determining the dielectric constant of a fluid

Also Published As

Publication number Publication date
EP1098176A1 (en) 2001-05-09
ATE263361T1 (en) 2004-04-15
EP1098176B1 (en) 2004-03-31
DK1098176T3 (en) 2004-07-26

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Legal Events

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EEER Examination request
FZDE Discontinued