Measuring arrangements for measuring a property of a medium usually have a containment for holding/conveying the medium, as well as at least one measuring device. Media contacting parts of the containment, or of the measuring device, can for practical reasons be made of material having a tendency to shed pieces of itself. Such pieces can be small, such that a partial failure of a part can remain unnoticed.
An object of the invention is, thus, to provide a window for a measuring arrangement as well as a measuring arrangement, in the case of which such a partial failure can be detected.
The object is achieved by a window as defined in independent claim 1 and a measuring arrangement as defined in independent claim 5.
A window of the invention is adapted for service in a measuring arrangement comprising a containment for a medium and at least one measuring device for registering a property of the medium, wherein the window is adapted to be applied as a component of the containment or of the measuring device and to form a closure for a lumen of the containment,
In an embodiment, the marking is formed by a coating of a containment lumen faceable side of the window with a plurality of ferromagnetic marking particles,
In an embodiment, a concentration of the marking particles is defined by a number N per cubic millimeter,
In an embodiment, a volume of a marking particle is, in each case,
A measuring arrangement of the invention comprises a containment for a medium as well as a measuring device for registering a property of the medium,
A shed piece producing, partial failure of a component of the measuring arrangement can, thus, be detected in simple manner and a warning report issued.
A containment can be, for example, a tank or a measuring tube or a pipeline.
In an embodiment, the marking is formed by a coating of a containment lumen faceable side of the window with a plurality of ferromagnetic marking particles,
In an embodiment, a concentration of the marking particles is defined by a number N per cubic millimeter,
In this way, it can be assured that a sufficiently great fraction of arising shed pieces contains at least one marking particle, such that a partial failure can be detected early.
In this way, it can be assured that the marking particles cause in the dielectric material an only low influencing of the dielectric material.
In an embodiment, a volume of a marking particle amounts, in each case,
In this way, a good detectability is provided. The upper limit prevents a disturbing influence of the marking particles, for example, in case of a viewing window.
In an embodiment, the detector is arranged in the region of a drain of the containment.
In this way, the probability that shed pieces are detected is increased.
In an embodiment, the detector is adapted to detect marking particles by establishing a magnetic flux density change.
In an embodiment, the detector comprises, for example:
Quantum magnetometers operate based, for example, on nitrogen vacancy centers in diamonds, whose spectroscopic properties depend on external influences, such as, for example, a present magnetic field. These properties can then be queried, for example, by means of microwave radiation, from which information relative to the external magnetic field can be derived. Such quantum magnetometers have especially high sensitivity and are, consequently, advantageous for detecting such shed pieces.
In an embodiment, the detector is adapted to sense a magnetic field in at least two and, especially, three directions.
In this way, it can be avoided that a shed piece produces a magnetic field directed unfavorably for the detector or distorts a field produced by permanent magnets. A direction dependent measuring can prove useful in the case of asymmetric particles.
In an embodiment, the measuring device is a pressure measuring device having a pressure measuring cell comprising a ceramic material, or a radar fill level measuring device having transmitting/receiving means comprised of a ceramic material,
In an embodiment, the containment includes a viewing window having a ferromagnetic marking.
The invention will now be described based on examples of embodiments presented in the appended drawing, the figures of which show as follows:
According to the invention, at least one such window includes a ferromagnetic marking 5, which is adapted in case of a partial failure of the window to issue ferromagnetically marked, shed pieces into the medium. The marking 5 can be embodied, for example, as a coating 5.2 of the window; compare
According to the invention, the measuring arrangement includes at least one detector adapted for detecting ferromagnetic marking particles 5.1. In an embodiment, the detector is embodied, for example, in the form of a quantum magnetometer. In case the containment, such as shown here, includes a drain 2.1, the detector is advantageously arranged in the region of the drain, since an increased concentration of shed pieces can be expected there.
Quantum magnetometers operate based, for example, on nitrogen vacancy centers in diamond. The spectroscopic properties of such nitrogen vacancy centers depend on external influences, such as, for example, a present magnetic field. These properties can be queried, for example, by means of microwave radiation, in order to derive information concerning an external magnetic field. Such quantum magnetometers exhibit an especially high sensitivity and are, consequently, advantageous for detecting such shed pieces.
Alternatively, the containment can also be a measuring tube adapted for conveying the medium.
In an embodiment, the ferromagnetic marking particles have a concentration defined by a number N per cubic millimeter,
The lower limit assures that a sufficiently great part of arising shed pieces contains at least one marking particle, such that a partial failure can be detected early. The upper limit assures that the marking particles bring about in the dielectric material an only minor influencing of the dielectric material.
In an embodiment, volume of a marking particle 5.1 is, in each case, at least 1 cubic micrometer and/or at most 100,000 cubic micrometer.
In this way, it can be assured that the marking particles bring about in the dielectric material an only minor influencing of the dielectric material.
The lower limit assures a sufficient magnetic effect, while the upper limit assures that the marking particles bring about in the dielectric material an only minor influencing of the dielectric material.
Number | Date | Country | Kind |
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10 2021 120 432.1 | Aug 2021 | DE | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2022/070739 | 7/25/2022 | WO |