Measuring device for measuring an electric variable in a conductor, assembly, and method

A contactless measuring device using microsensors and distance measurement technology addresses the safety and disruption issues of traditional contact-based methods for measuring electrical energy flows, enabling precise and safe monitoring of energy flows over long distances.

WO2025132218A1PCT designated stage expired Publication Date: 2025-06-26SIEMENS AG
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Patent Information

Application Number
PCT/EP2024/086575
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2024-01-10
Filing Date
2024-12-16
Publication Date
2025-06-26

AI Technical Summary

Technical Problem

Existing methods for measuring electrical energy flows require physical contact with conductors, which is unsafe and disruptive, especially for high-voltage lines, and cannot be easily retrofitted or used over long distances without significant effort and safety concerns.

Method used

A contactless measuring device that combines non-contact voltage and current measurements using microsensors, such as MEMS voltmeters for electric field detection and Hall sensors or Rogowski coils for current measurement, along with a distance measuring device to determine the precise distance to the conductor, allowing for simultaneous and precise determination of electrical quantities without physical contact.

Benefits of technology

Enables safe, efficient, and non-invasive measurement of electrical energy flows over long distances, reducing the need for temporary shutdowns and minimizing safety risks, while allowing for precise monitoring of energy flows and detection of local power losses.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to a measuring device (12) for measuring an electric variable (20) in an electric conductor (14), comprising at least a voltage meter (22) and a current meter (24), the measuring device (12) being designed to contactlessly measure the electric variable (20) in the electric conductor (14), and the measuring device (12) additionally comprising a distance meter (26) for measuring the distance (28) of the measuring device (12) from the conductor (14). The invention also relates to an assembly (10) and to a method.
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Description

[0001] Description

[0002] Measuring device for determining an electrical quantity in a conductor, arrangement and method

[0003] The invention relates to a measuring device for determining an electrical quantity in a conductor, comprising at least one voltage measuring device and one current measuring device, wherein the measuring device is designed for contactless determination of the electrical quantity on the electrical conductor. Furthermore, the invention relates to an arrangement and a method for determining an electrical quantity.

[0004] The precise determination of electrical energy consumption is an important task for various application areas, such as industrial automation, building technology, and large-scale electrical distribution networks. Particularly in the context of the ongoing transition to renewable energies and the decentralization of energy generation, it will be crucial in the future to be able to map energy flows locally with high resolution.

[0005] In order to measure electrical energy flows, the precise, high-resolution and simultaneous determination of the two quantities current and voltage at one location is necessary. There are various measuring methods available for carrying out the measurement, but these methods require physical contact with the measuring object, particularly when measuring voltage. This requires either damage to the insulation or, in the case of high-voltage lines, physical contact with a safety-critical voltage must be established. This physical contact has the disadvantage, particularly in the case of existing lines, that they have to be temporarily disconnected from the grid for installation and strict safety requirements must be observed during subsequent operation. With high-voltage lines, energy flows are typically measured at an input and output point using precise contact methods.Replacing or retrofitting such a point is not possible without enormous effort and the temporary shutdown of the network. Furthermore, there is uncertainty about the status of the network between the various measuring points. The distance between these measuring points can therefore be dozens or hundreds of kilometers.

[0006] Energy measurements are performed using a device that is inserted into the existing power connection (e.g., a wire or cable). This is necessary because, in most cases, voltage measurements are performed using contact methods, such as an analog-to-digital converter. Non-contact methods, such as Hall sensors or Rogowski coils, are available for measuring current flow. Macroscopic field mills can be used for non-contact voltage measurements.

[0007] The object of the present invention is to provide a measuring device, an arrangement and a method by means of which an electrical quantity on a conductor can be determined without contact.

[0008] This object is achieved by a measuring device, an arrangement, and a method according to the independent patent claims. Advantageous embodiments are specified in the subclaims.

[0009] One aspect of the invention relates to a measuring device for determining an electrical quantity in a conductor, comprising at least one voltage measuring device and one current measuring device, wherein the measuring device is designed for contactless determination of the electrical quantity on the electrical conductor. It is provided that the measuring device additionally has a distance measuring device for determining the distance of the measuring device from the conductor.

[0010] In particular, voltage can also be measured without contact. Thus, the electrical quantity as a whole can be determined without contact.

[0011] In particular, a measuring device is presented which solves the two problems of network separation and safety requirements by a contactless method.

[0012] In particular, a combination of two non-contact measurement methods based on microsensors is proposed. For example, a so-called MEMS voltmeter (MEMS - microelectromechanical system) is used to measure the voltage. This allows, for example, an electric field to be measured, since the conductor generates an electric field, particularly when current flows through it. This can be measured, and combined with the current measurement, an electrical quantity, such as electrical power, within the conductor can be determined accordingly.

[0013] In particular, by determining the current and voltage curves simultaneously and at the same location, the current power flow in the conductor can be calculated by simply multiplying the two values, or the energy flow through the conductor can be determined by a temporal indication. Important for this principle is the precise knowledge of the distance between the measuring device and the voltage / current-carrying component, since both measured quantities E—in other words, the electric field—and B—in other words, the magnetic field—depend on it.

[0014] The novelty of the invention thus lies in the fact that the distance to the line, or rather to the conductor, especially to a high-voltage line, is not adjusted using a mechanical spacer, but instead is precisely determined using the additional measuring device, in particular the distance measuring device. This opens up the possibility of measuring energy flows non-contact and over greater distances.

[0015] In particular, the invention thus enables contactless power / energy measurement, for example in a high-voltage system. This makes it possible to comply with very high safety requirements. Furthermore, the measuring device can be integrated into the existing system without having to intervene in the actual system. In particular, in widely distributed power systems, energy flows can be effectively monitored in this simple and cost-effective manner. Furthermore, the method can be used to accurately resolve local power losses. This can be used, for example, in transformer substations to detect wear and tear on contact systems, for example due to aging.

[0016] According to an advantageous embodiment, the voltage measuring device is designed to detect an electric field of the conductor. In particular, the electric field generated by a conductor under voltage changes as a function of the distance from the source, usually linearly or quadratically, depending on the arrangement. Objects in the surrounding area, in particular for example high-voltage pylons or the like, can, however, cause further changes in the field through influence and / or polarization. In other words, the high-voltage pylons or objects in the surrounding area can also be taken into account in order to determine the electric field. However, if no further non-constant voltage source is present, the field changes linearly with the voltage.This means that the electric field measured by a sensor in any fixed position can be described by the following linear function: sens k • U With E. S ens as the measured electric field, k a given factor and U the voltage .

[0017] It is assumed that the voltage measuring device 22 measures the component of the electric field E which is orthogonal to the surface of the sensor.

[0018] For small changes in the distance between the conductor and the sensor, it can be assumed that k can be described by a function of the distance r ( k = f ( r ) ). Depending on the arrangement and conditions, k can be determined mathematically, by simulation, or by calibration.

[0019] In the presence of several variable voltages, the measured field can be described as follows, thanks to the superposition principle:

[0020] Esens = k ■ U1+ k2• U2+ - 1- k n - U n

[0021] In order to be able to calculate out interference signals or superimposed fields from other conductors, it is also possible to place several measuring devices.

[0022] It is further advantageous if the measuring device comprises an electronic computing device, wherein the electronic computing device is designed to determine the electrical quantity as a function of the electric field and the distance. Thus, a determination based on the electric field and the distance can be carried out by means of the electronic computing device.

[0023] A further advantageous embodiment provides that the electronic computing device is additionally designed to determine the electrical quantity, wherein an electrical power flow and / or an electrical energy flow is determined as the electrical quantity. In particular, by determining the current and voltage curves at the same time and location, the current power flow in the conductor can be calculated by simply multiplying the two values, or the energy flow through the conductor can be determined by temporal integration. The electrical quantity can thus be reliably determined.

[0024] Furthermore, it has proven advantageous if the electronic computing device is additionally designed to determine a change in the length of the conductor and to take this into account when determining the electrical quantity. In particular, a change in the (measurement) distance induced by a change in length can be determined. In particular, the distance measurement can also be used to compensate for a change in the sagging of the cable, in particular, for example, due to an increase in temperature, and thus in the distance to the cable sensor. This allows the electrical quantity to be determined with high precision.

[0025] It has also proven advantageous if the distance measuring device is designed as a lidar sensor and / or a radar sensor and / or an ultrasonic sensor. Thus, a distance measurement can be performed in various ways. In particular, the corresponding sensors are highly precise, allowing a precise distance measurement. This, in turn, enables a precise determination of the electrical quantity.

[0026] Furthermore, it has proven advantageous if the measuring device for determining the electrical quantity on a high-voltage line is designed as a conductor. For example, the measuring devices can then be arranged adjacent to the high-voltage line. This allows for highly flexible use of the measuring device, particularly on high-voltage lines where it is difficult to measure an electrical quantity.

[0027] In a further advantageous embodiment, the voltage measuring device is designed as an electric field mill. The electric field mill is in particular a so-called MEMS measuring device. In particular, a measuring object under voltage generates an electric field. This electric field is measured non-contact using the "MEMS voltmeter". If the voltage measurement is combined with a non-contact current measurement based on a Hall sensor or a Rogowski coil, the instantaneous power in the conductor or the time-integrated energy flow in the conductor can be determined using a simple calculation. The current measurement uses the magnetic field generated by moving charges as the physical measurement variable.

[0028] Furthermore, it has proven advantageous if the measuring device is designed to determine the distance independently of the voltage measuring device and the current measuring device. In particular, it is therefore not necessary for the distance determination to be carried out continuously, but can be carried out before or during the measurement, for example at specific intervals. In particular, since a change in distance is not as variable over time as, for example, the voltage measurement, the distance can thus be measured at shorter time intervals. This reduces the effort.

[0029] It has also proven advantageous if the measuring device is designed to determine at least two electrical quantities for at least two conductors. Particularly in the presence of multiple variable voltages, the measured electric field can be described as follows, thanks to the superposition principle:

[0030] Esens = k ■ U- + k2■ U2+ — H k n • U n

[0031] To calculate interference signals or superimposed fields from other conductors, it is possible to place multiple measuring devices. The arrangement of the measuring devices can be based on the spatial arrangement of the different conductors. Most measuring devices can be used simultaneously to measure the power of the other phases or conductors. To measure the voltages of n conductors, n sensors are required. This results in the measured fields:

[0032] This represents a linear system of equations with n equations and n unknown voltages and can be solved. If the conductors are phase conductors of a three-phase system, it is possible to use information about the phases to reduce the number of sensors or achieve a more precise measurement. The relationships shown can also be used analogously for the magnetic field to determine the currents.

[0033] Furthermore, it has proven advantageous if the current measuring device has a Hall sensor and / or a Rogowski coil. This allows the current measurement on the conductor to be performed simply, yet reliably, and without contact.

[0034] A further aspect of the invention relates to an arrangement comprising at least one measuring device according to the preceding aspect and comprising a conductor, wherein the measuring device is arranged at a distance from the conductor. In particular, the conductor and measuring device do not touch each other. Thus, for example, in the case of a high-voltage line, the electrical quantity can be reliably determined even remotely from the high-voltage line.

[0035] A further advantageous embodiment provides for the measuring device to be mounted on a power pole for holding the conductor. Alternatively, the measuring device can also be mounted near the conductor or near the support. For example, the measuring device can then measure the electrical quantity on the power pole without contact and at a predetermined distance, for example, from a relatively defined perspective.

[0036] According to a further embodiment, the arrangement comprises at least the measuring device according to the preceding aspect and the conductor, wherein the measuring device is arranged on the conductor. For example, the measuring device can then be arranged on a cable carrier, or direct attachment to the cable itself may also be possible. In particular, however, there is no electrical contact between the conductor and the measuring device.

[0037] Yet another aspect of the invention relates to a method for determining an electrical quantity in a conductor by means of a measuring device according to the preceding aspect. An electrical field of the conductor is detected by means of the voltage measuring device. A current of the conductor is detected by means of the current measuring device. A distance of the conductor to the measuring device is detected by means of the distance determining device. The electrical quantity is determined as a function of the detected electrical field, the detected current and the detected distance.

[0038] Advantageous embodiments of the measuring device are to be regarded as advantageous embodiments of the arrangement and the method. The measuring device and the arrangement, in particular, have specific features enabling the corresponding method steps to be carried out.

[0039] Furthermore, the invention therefore also relates to a computer program product with program code means which cause an electronic computing device, when the program code means are processed by the electronic accounting machine, to simply carry out methods according to the preceding aspect.

[0040] Furthermore, the invention also relates to a computer-readable storage medium with at least the computer program product according to the preceding aspect. The method is essentially carried out, in particular, by means of the measuring device.

[0041] A computing unit / electronic computing device can be understood, in particular, as a data processing device containing a processing circuit. The computing unit can therefore, in particular, process data to perform computing operations. This may also include operations for performing indexed access to a data structure, for example, a look-up table (LUT).

[0042] The computing unit can in particular contain one or more computers, one or more microcontrollers and / or one or more integrated circuits, for example one or more application-specific integrated circuits (AS ICs), one or more field-programmable gate arrays (FPGAs), and / or one or more single-chip systems (SoCs). The computing unit can also contain one or more processors, for example one or more microprocessors, one or more central processing units (CPUs), one or more graphics processing units (GPUs) and / or one or more signal processors, in particular one or more digital signal processors (DSPs).The computing unit may also include a physical or virtual network of computers or other of the aforementioned units. In various embodiments, the computing unit includes one or more hardware and / or software interfaces and / or one or more memory units.

[0043] A memory unit can be a volatile data memory, for example a dynamic random access memory (DRAM) or a static random access memory (SRAM), or a non-volatile data memory, for example a read-only memory (ROM), a programmable read-only memory (PROM), an erasable programmable read-only memory (EPROM), an electrically erasable programmable read-only memory (EEPROM), a flash memory or flash EEPROM, a ferroelectric random access memory (FRAM), a magnetoresistive random access memory,MRAM (magnetoresistive random access memory) or phase-change random access memory, PCRAM (phase-change random access memory).

[0044] For use cases or application situations that may arise during the method and which are not explicitly described here, it may be provided that, in accordance with the method, an error message and / or a request to enter user feedback is issued and / or a default setting and / or a predetermined initial state is set.

[0045] Regardless of the grammatical gender of a particular term, persons with male, female or other gender identities are included.

[0046] Further features and combinations of features of the invention emerge from the figures and their description, as well as from the claims. In particular, further embodiments of the invention do not necessarily have to contain all features of one of the claims. Further embodiments of the invention may have features or combinations of features that are not mentioned in the claims.

[0047] FIG 1 is a schematic side view of an embodiment of an arrangement

[0048] FIG 2 shows a further schematic side view of a further embodiment of an arrangement;

[0049] FIG 3 shows yet another schematic side view of yet another embodiment of an arrangement;

[0050] FIG 4 shows a schematic block diagram according to an embodiment of a measuring device.

[0051] The invention is explained in more detail below with reference to specific exemplary embodiments and associated schematic drawings. In the figures, identical or functionally equivalent elements may be provided with the same reference numerals. The description of identical or functionally equivalent elements may not necessarily be repeated for different figures.

[0052] FIG. 1 shows a schematic side view of an embodiment of an arrangement 10. The arrangement comprises at least one measuring device 12 and a conductor 14, in particular an electrical conductor 14. In the present embodiment, the electrical conductor 14 is designed in particular as a high-voltage conductor or high-voltage line. In this case, the conductor 14 is arranged on a first power pole 16 and on a second power pole 18.

[0053] In the present exemplary embodiment, it is shown that the arrangement 10, in particular the measuring device 12, is arranged at a distance from the conductor (14). According to one embodiment, the measuring device 12 is designed to determine an electrical variable 20 in the conductor 14. For this purpose, the measuring device 12 has at least one voltage measuring device 22 and one current measuring device 24. The measuring device 12 is designed, in particular, for the contactless determination of the electrical variable 20 in the electrical conductor 14.

[0054] It is provided that the measuring device 12 additionally has a distance measuring device 26 for determining a distance 28 of the measuring device 12 to the conductor 14.

[0055] In this case, it is provided in particular that the voltage measuring device 22 is designed to detect an electric field E (FIG. 4) of the conductor 14. Furthermore, it is provided in particular that the measuring device 12 has an electronic computing device 30, wherein the electronic computing device 30 is designed to determine the electrical quantity 20 as a function of the electric field E and the distance 28. In this case, the electronic computing device 30 can additionally be designed to determine the electrical quantity 20, wherein an electrical power flow and / or electrical energy flow is determined as the electrical quantity 20. Furthermore, the electronic computing device 30 can be designed to determine a change in length of the conductor 14 and to take this into account when determining the electrical quantity 20. In particular, a change in the (measurement) distance induced by a change in length can be determined.

[0056] FIG 1 further shows that the distance measuring device 26 can be designed as a lidar sensor and / or as a radar sensor and / or as an ultrasonic sensor.

[0057] It can also be provided that the measuring device

[0058] 12 is designed to determine the distance 28 independently of the voltage measuring device 22 and the current measuring device 24.

[0059] Overall, FIG. 1 shows that by determining the current and voltage curves at the same time and location, the current power flow in the conductor 14 can be calculated by simply multiplying the two values, or the energy flow through the conductor 14 can be calculated by integrating them over time. Important for this measuring principle is the precise knowledge of the distance 28 between the measuring device 12 and the voltage- and current-carrying component, since both measured variables B, i.e. the magnetic field (FIG. 4), and E, i.e. the electric field, depend on it.

[0060] The innovation now lies in the fact that the distance 28 to, for example, the high-voltage line is not adjusted using a mechanical spacer, but instead is precisely determined using the additional distance measuring device 26. This opens up the possibility of measuring energy flows non-contact and over greater distances.

[0061] FIG 2 shows a further schematic view of an embodiment of the arrangement 10 with differently arranged measuring devices 12. In particular, FIG 2 shows that, for example, a measuring device 12 can be arranged directly on the conductor 14, wherein in particular no electrical contact is formed between the conductor 14 and the measuring device 12. Furthermore, FIG 2 shows that, for example, a measuring device 12 can also be formed on the power pole 18. In particular, it is also possible to install the measuring devices 12, as shown in FIG 2, for example on the cable carriers or the power poles 16, 18. Direct attachment to the conductor 14 is also possible, as already mentioned.

[0062] The electric field E , which is generated by the conductor 14 under voltage, changes as a function of the distance 28 from the source, usually linearly or quadratically, depending on the arrangement. Objects in the surrounding area, for example the power pole 16, 18, can cause further changes in the electric field E through influence and / or polarization. However, if no non-constant voltage source is present, the electric field E changes linearly with the voltage. As a result, the electric field E , which can be measured by a sensor, in particular the voltage measuring device 22, in any fixed position, can be described by the following linear function:

[0063] Esens k • U

[0064] It is assumed that the voltage measuring device 22 measures the component of the electric field E which is orthogonal to the surface of the sensor.

[0065] For small changes in the distance 28 between the conductor 14 and the voltage measuring device 22, it can be assumed that k can be described by a function of the distance 28 r ( k = f ( r ) ). Depending on the arrangement and conditions, k can be determined mathematically or by calibration. In the presence of several variable voltages, the measured electric field E can be described as follows, thanks to the superposition principle:

[0066] Esens = k ■ U1+ k2• U2+ - 1- k n - U n

[0067] The voltages must be referenced to the same reference potential. FIG. 3 shows a further schematic side view according to an embodiment of the arrangement 10. In the following exemplary embodiment, three measuring devices 12 are shown in particular. This can be advantageous, for example, if three conductors 14 are provided. In particular, in order to be able to calculate out interference signals or superimposed electric fields E from other conductors 14, it is also possible to place multiple measuring devices 12.

[0068] The arrangement of the measuring devices 12 can be based on the spatial arrangement of the conductors 14. Most of the measuring directions 12 can be used simultaneously to measure the power of the other phases. To measure the voltages of n-conductors, n-sensors are required. The measured fields are then:

[0069] These form a system of equations with n equations and n unknown voltages, which can be solved accordingly. If the conductors 14 are phase conductors of a three-phase system, it is possible to use information about the phases to reduce the number of measuring devices 12 or to achieve a more precise measurement.

[0070] Furthermore, the method can also be used analogously for the magnetic field B to determine the currents.

[0071] Several methods are possible for determining the distance 28. This can be done, for example, using radar sensors or optical distance measurements. In principle, the distance determination does not have to be performed continuously, but can also be performed before or during the measurement, for example, at specific intervals.

[0072] With the help of the distance measurement, a change in the sagging of the conductor 14, for example due to an increase in temperature, and thus the distance between the cable and the sensor can be compensated.

[0073] FIG 4 shows a schematic block diagram according to an embodiment of a measuring device 12. In the present case it is shown in particular that the measuring device 12 uses the combination of two non-contact measuring methods based on microsensors. For measuring the voltage, use is made in particular of the so-called principle of the MEMS voltmeter, which is also referred to as a field mill. A live measuring object, in particular conductor 14, generates the electric field E. This electric field E is measured non-contact using the MEMS. The voltage measurement is now combined with a non-contact current measurement based on a Hall sensor or a Rogowski coil, wherein in this case a magnetic field B is measured in particular.Using simple calculations, for example, using the electronic calculation 30, the instantaneous power in the conductor 14 or the time-integrated energy flow in the conductor 14 can be determined. The current measurement uses the magnetic field B generated by moving charges as a physical measurement variable.

[0074] Reference symbol list

[0075] arrangement

[0076] 12 measuring device 14 conductor

[0077] 16 first electricity pylon

[0078] 18 second electricity pylon

[0079] 20 electrical sizes

[0080] 22 Voltage measuring device 24 Current measuring device

[0081] 26 Distance measuring device

[0082] 28 distance

[0083] 30 electronic computing device

[0084] B magnetic field

[0085] E electric field

Claims

Patent claims 1. Measuring device (12) for determining an electrical quantity (20) in an electrical conductor (14), with at least one voltage measuring device (22) and one current measuring device (24), wherein the measuring device (12) is designed for contactless determination of the electrical quantity (20) in the electrical conductor (14), characterized in that the measuring device (12) additionally has a distance measuring device (26) for determining a distance (28) of the measuring device (12) to the conductor (14).

2. Measuring device (12) according to claim 1, characterized in that the voltage measuring device (22) is designed to detect an electric field (E) of the conductor (14).

3. Measuring device (12) according to claim 2, characterized in that the measuring device (12) has an electronic computing device (30), wherein the electronic computing device (30) is designed to determine the electrical quantity (20) as a function of the electrical field (E) and the distance (28).

4. Measuring device (12) according to claim 3, characterized in that the electronic computing device (30) is additionally designed to determine the electrical variable (20), wherein an electrical power flow and / or an electrical energy flow is determined as the electrical variable (20).

5. Measuring device (12) according to one of claims 2 to 4, characterized in that the electronic computing device (30) is additionally designed to determine a change in length of the conductor (14). and to be taken into account when determining the electrical quantity (20).

6. Measuring device (12) according to one of the preceding claims, characterized in that the distance measuring device (26) is designed as a lidar sensor and / or a radar sensor and / or an ultrasonic sensor.

7. Measuring device (12) according to one of the preceding claims, characterized in that the measuring device (12) for determining the electrical quantity (20) on a high-voltage line is designed as a conductor (14).

8. Measuring device (12) according to one of the preceding claims, characterized in that the voltage measuring device (22) is designed as an electric field mill.

9. Measuring device (12) according to one of the preceding claims, characterized in that the measuring device (12) is designed to determine the distance independently of the voltage measuring device (22) and the current measuring device (24).

10. Measuring device (12) according to one of the preceding claims, characterized in that the measuring device (12) is designed to determine at least two electrical quantities (20) for at least two conductors (14).

11. Measuring device (12) according to one of the preceding claims, characterized in that the current measuring device (24) has a Hall sensor and / or a Rogowski coil.

12. Arrangement (10) with at least one measuring device (12) according to one of claims 1 to 11 and with a conductor (14), wherein the measuring device (12) is arranged at a distance from the conductor (14).

13. Arrangement (10) according to claim 12, characterized in that the measuring device (12) is arranged on a power pole (16, 18) for holding the conductor (14).

14. Arrangement (10) with at least one measuring device (12) according to one of claims 1 to 11 and with a conductor (14), wherein the measuring device (12) is arranged on the conductor (14).

15. A method for determining an electrical quantity (20) in a conductor (14) by means of a measuring device (12) according to one of claims 1 to 12, comprising the steps: - detecting an electric field (E) of the conductor (14) by means of the voltage measuring device (22); - detecting a current of the conductor (14) by means of the current measuring device (24); - detecting a distance (28) of the conductor (14) to the measuring device (12) by means of the distance measuring device (26); and - Determining the electrical quantity (20) as a function of the detected electrical field (E), the detected current and the detected distance (28).

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