Arc detection antenna in electricity metering systems

By integrating an arc detection antenna within a current transformer structure near the arc location, the electric meter achieves improved arc detection accuracy and protection from high voltages, addressing the inaccuracy and safety issues of conventional systems.

JP7789003B2Active Publication Date: 2025-12-19LANDIS GYR TECH INC
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Patent Information

Application Number
JP2022546538
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-01-30
Filing Date
2021-01-26
Publication Date
2025-12-19
Estimated Expiration
2041-01-26

AI Technical Summary

Technical Problem

Existing arc detection systems in electric meters are often inaccurate due to the distance between the arc detection element and the location of the arc, which can lead to delayed detection and potential damage from high heat and fire.

Method used

The electric meter incorporates a current transformer structure with an arc detection antenna positioned adjacent to the current transformer, allowing for more accurate arc detection by locating the antenna closer to the arc occurrence and shielding it from high-voltage conditions.

Benefits of technology

This configuration enhances arc detection accuracy and sensitivity while protecting the antenna from high voltages, enabling timely intervention to prevent damage and danger.

✦ Generated by Eureka AI based on patent content.

Smart Images

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Patent Text Reader

Abstract

An electric meter in a utility box can detect an arc condition between a meter blade in a building and a meter socket in the utility box. The electric meter includes a current transformer structure that forms an enclosed space. An arc detection antenna may be disposed within the enclosed space along with the current transformer. The current transformer structure is disposed on a base plate of the electric meter near the blade that is connected to the meter socket. Leads of the arc detection antenna are electrically connected to an arc detection circuit configured to detect an arc condition based on a signal received from the arc detection antenna. If an arc condition is determined, the electric meter may be activated to disconnect the power source from the building.
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Description

[Technical Field]

[0001] The present disclosure relates generally to the field of safety in electric utility systems, and more particularly to arc detection antennas installed in electric meters to detect electrical arcs between electric metering devices contained in utility boxes in buildings. [Background technology]

[0002] Many residential and commercial buildings include electric meters that allow utility companies to monitor power consumption within the building. To do this, the electric meter is electrically connected to a meter socket that is typically located in a utility box located on the exterior wall of the building. The electric meter may include a meter blade that is received in the meter socket and held in place by a pulling force applied to the blade by the meter socket.

[0003] In some instances, installing a new meter to replace an old meter can result in a phenomenon known as "arcing." Here, an electric arc forms in the gap between the meter blade and the corresponding socket jaw of the meter socket when the meter is installed. Arcing can also occur randomly after a period of installation. For example, a gap can form between the blade and the socket when the socket's pull force weakens. This gap provides an environment conducive to arcing. The presence of an arc in an electric metering system can cause high heat and possibly fire, and can cause significant damage to electric meter system components, buildings, and even injury to personnel, such as workers assisting with meter replacement. Therefore, it is important to detect an arcing condition before damage or danger occurs.

[0004] To detect an arc condition, an electricity meter may be configured with an arc detection element. However, due to the presence of high voltage conditions near the location where the arc occurs, the arc detection element is typically located in a location within the meter away from the meter blade and meter socket. A large distance between the arc detection element and the location of the arc may result in inaccurate detection of the arc. Summary of the Invention

[0005] Aspects and examples are disclosed relating to an electric meter capable of detecting an electrical arc between an electric meter and a meter socket in a utility box connected to a power line. In an exemplary embodiment, the electric meter includes a base plate assembly and a housing assembly. The base plate assembly includes an electrical conductor connecting two meter blades. Each meter blade is configured to be positioned within a corresponding socket jaw of the meter socket to electrically connect the electric meter to the meter socket. The base plate assembly further includes a current transformer structure including a current transformer holder and a current transformer cover that form an enclosed space. The current transformer structure further includes a current transformer positioned within the enclosed space and inductively coupled to the electrical conductor. The current transformer structure further includes an arc detection antenna positioned within the enclosed space and adjacent to the current transformer. Leads of the arc detection antenna extend outside the current transformer structure. The housing assembly is configured to be coupled to the base plate assembly and includes a circuit board having arc detection circuitry configured to detect an electric arc. Leads of the arc detection antenna are electrically connected to the arc detection circuit.

[0006] In another example, the current transformer structure includes a current transformer holder and a current transformer cover that form an enclosed space when connected to the current transformer holder. The current transformer structure further includes a current transformer disposed in the enclosed space. The current transformer structure further includes an arc detection antenna disposed in the enclosed space and adjacent to the current transformer. Leads of the arc detection antenna extend outside the current transformer structure.

[0007] These exemplary embodiments are mentioned not to limit or define the present disclosure, but to provide examples to aid in understanding thereof. Further embodiments are discussed in the detailed description, where further description is provided. [Brief explanation of the drawings]

[0008] The features, embodiments, and advantages of the present disclosure will be better understood from the following detailed description when taken in conjunction with the accompanying drawings.

[0009] [Figure 1A] FIG. 1 is a block diagram illustrating an example of an electric meter, a utility box, and a meter socket, in accordance with some aspects. [Figure 1B] FIG. 1 is a block diagram illustrating an example of an electric meter, a utility box, and a meter socket, in accordance with some aspects. [Figure 2] FIG. 1 is a block diagram illustrating a simplified example of components included in an electric meter capable of detecting an arcing condition present in a utility box, in accordance with some aspects. [Figure 3] 1 illustrates a side view of an electric meter capable of detecting an arcing condition present in a utility box, according to some embodiments. [Figure 4] 4 illustrates a base plate assembly of the electricity meter shown in FIG. 3 according to some embodiments. [Figure 5A] 1 illustrates an example of a current transformer structure that may be installed in an electric meter to detect arcing conditions in a utility box, according to some aspects. [Figure 5B] 1 illustrates an example of a current transformer structure that may be installed in an electric meter to detect arcing conditions in a utility box, according to some aspects. [Figure 6] 1 illustrates an example of a base plate assembly for a three-phase meter for detecting arcing conditions in a utility box, according to some aspects. DETAILED DESCRIPTION OF THE INVENTION

[0010] Certain aspects and examples of the present disclosure relate to an electric meter for detecting an arcing condition between an electric meter and a meter socket in a utility box in a building. In some aspects, the electric meter may include a base plate assembly including a base plate and an electrical conductor connecting two meter blades. Each meter blade extends from the base plate and is configured to engage a corresponding socket jaw of the meter socket to electrically connect the electric meter to the meter socket connected to the power line. The base plate assembly further includes a current transformer inductively coupled to the electrical conductors to provide current to a metering circuit of the meter so that the meter can monitor the current level on the power line. The current transformer is disposed within an enclosed space of the current transformer structure formed by a current transformer holder and a current transformer cover.

[0011] To detect an arcing condition, the current transformer structure further includes an arc detection antenna, such as a loop antenna, that can be positioned adjacent to the current transformer within the enclosed space of the current transformer structure, with the leads of the arc detection antenna and the leads of the current transformer extending outside the current transformer structure and insulated from one another.

[0012] The electric meter may further include a housing assembly configured to be coupled to the base plate assembly to form a complete meter assembly. The housing assembly includes at least one circuit board carrying arc detection circuitry configured to detect an electrical arc condition based on a signal generated by the arc detection antenna. The leads of the arc detection antenna are electrically connected to the arc detection circuitry. The same circuit board or a different circuit board within the housing assembly may carry measurement circuitry configured to measure power consumed by the building. For example, the leads of a current transformer may be electrically connected to the measurement circuitry for measurement purposes.

[0013] In a particular configuration of an electric meter, the current transformer structure is located next to the meter's base plate, and the circuit board carrying the arc detection circuitry is located at one end of the housing assembly, further away from the base plate. As a result, the arc detection antenna is closer to the location where the arc occurs (i.e., the blades), allowing for more accurate arc detection. Furthermore, because the arc detection antenna is located within a properly insulated current transformer structure, the arc detection antenna is not exposed to high-voltage conditions near the blades and can function properly. Compared to conventional approaches in which the arc detection antenna is located on a circuit board to avoid exposure to high-voltage conditions, the electric meter disclosed herein can provide more accurate arc detection. Furthermore, the current transformer structure generally provides more space than the circuit board for locating the arc detection antenna. As a result, the detection sensitivity of the arc detection antenna can be improved and / or the number of turns of the arc detection antenna can be reduced. This allows for more flexibility in the design and performance of the arc detection antenna than conventional approaches.

[0014] 1A and 1B show block diagrams of an electric meter, a utility box, and a meter socket. FIG. 1A illustrates an electric meter 102 including one or more blades, such as blade 103. FIG. 1A also illustrates a utility box 100 including a meter socket 104. The meter socket 104 includes a receptacle 105, also referred to as a "socket jaw" 105, within which the blade 103 may be disposed or mated. The socket jaw 105 includes a utility-side socket jaw 105A and a building-side socket jaw 105B. The electric meter 102 may be mated with the meter socket 104, as shown by the dotted line in FIG. 1A, such that the blade 103 is disposed within the socket jaw 105. Disposing the blade 103 within the socket jaw 105 electrically connects the electric meter 102 to the meter socket 104. The meter socket 104 may include a spring or other means for applying tension to the blade to maintain its position within the socket jaw of the meter socket 104. The meter socket 104 and the blade may each include one or more surfaces made of a conductive material to allow electricity to flow between the meter socket 104 and the blade.

[0015] The blade 103 and socket jaw 105 may be configured to transmit electrical signals between the utility side of the meter socket 104 and the electric meter 102, and between the electric meter 102 and the building side of the meter socket 104. For example, an electrical signal received from a utility company may be transmitted to the electric meter 102 via the utility-side socket jaw 105A and blade (not visible in FIG. 1A ) of the electric meter 102. Further, the electrical signal may be transmitted to the building via the blade 103 and building-side socket jaw 105B on the building side of the electric meter 102. The electric meter 102 may perform operations such as generating voltage or current detection signals, determining measurements, etc. as the electrical signals are transmitted between the utility side and the building side. Furthermore, the electric meter 102 may be configured to detect arcing conditions near the blade 103 and socket jaw 105.

[0016] FIG. 1B illustrates an example configuration of a utility box 100 with an electric meter 102 installed. The electric meter 102 may be installed by being placed in a meter socket 104 (not visible in FIG. 1B ). The utility box 100 may be located proximate to a building 180 that receives power from a utility company. A power line 190 may be electrically connected to the utility box 100 to provide power from the utility company to the building 180. Power from the power line 190 may be distributed through a meter socket 104 included in the utility box 100, for example, by being transferred between a utility meter socket jaw and a building meter socket jaw via an installed electric meter 102. The installed electric meter 102 may measure various aspects of the power supplied via the power line 190, for example, to determine overall power usage by the building 180.

[0017] In a further aspect, the installed electric meter 102 may detect an arcing condition between the electric meter 102 and the meter socket 104 in the utility box 100. The detected arcing condition may be used to determine whether to disconnect the electric meter 102 from the meter socket 104, thereby disconnecting the electric meter 102 from the power line 190, or whether to instruct the electric meter 102 to open one or more disconnect switches within the electric meter 102.

[0018] 2 is a block diagram illustrating a simplified example of components included within an electric meter 102 capable of detecting an electrical arc between the electric meter 102 and a meter socket 104, according to some aspects of the disclosure. The electric meter 102 illustrated in FIG. 2 includes a meter base 220, a metering circuit 250, and a communication element 208 that are supported by and at least partially contained within a housing of the electric meter 102.

[0019] The meter base 220 includes two terminal pairs 224A / 228A and 224B / 128B (e.g., meter blade 103 shown in FIG. 1 ) electrically connected by electrical conductors 226A and 226B, respectively. Each of the terminals 224A, 224B, 228A, and 228B extends from the housing of the electric meter 102 and mates with a meter socket (e.g., meter socket 104 shown in FIG. 1 ) connected to a power line (e.g., power line 192 shown in FIG. 1 ). Each of the terminal pairs 224A / 228A and 124B / 128B is configured to connect in-line with conductors in the power line, where all electrical signals traveling through the power line from the energy source to the load reach the load through the terminal pairs 224A / 228A and 224B / 228B. Terminal pairs 224A / 228A and 224B / 228B and electrical conductors 226A and 226B effectively become part of the power line connected between the source and the load when the electricity meter 102 is connected to a meter socket.

[0020] Meter base 220 further includes current transformers 232A and 232B inductively coupled to electrical conductors 226A and 226B, respectively. Current transformers 232A and 232B are electrically connected to measurement circuit 210 of metering circuit 250. The alternating current waveforms in conductors 226A and 226B induce currents in current transformers 232A and 232B, respectively. The currents may be utilized to monitor the current levels in the power lines, for example, by a current detection circuit in measurement circuit 210. Measurement circuit 210 may also include other circuitry for measurements, such as a voltage detection circuit for measuring the voltage of the power lines. The voltage detection circuit may be connected to terminals 224A, 228A, 124B, and 128B to measure the voltage. Voltage detection signals and current detection signals generated by the voltage detection circuit and current detection circuit, respectively, may be routed to a processing unit (not shown in FIG. 2 ) of metering circuit 250, for example, to determine the power consumed in a building.

[0021] To detect an arc condition, the meter base 220 further includes arc detection antennas 234A and 234B disposed adjacent to the current transformers 232A and 232B, respectively. The arc detection antennas 234A and 234B are electrically connected to an arc detection circuit 262 of the metering circuit 250. The arc detection antennas 234A and 234B provide detection signals to the arc detection circuit 262 for detecting an arc condition between the terminals 224A, 224B, 228A, and 228B and the respective socket jaws in the meter socket. For example, the arc detection circuit 262 can analyze the signals received from the arc detection antennas by filtering them for signals in a specific frequency band to detect an arc condition. The current transformer 232A (or 232B) and the arc detection antenna 234A (or 234B) are disposed within an enclosed structure referred to herein as a current transformer structure 236A (or 236B).

[0022] The electric meter 102 may be communicatively coupled to a remote device (not shown in FIG. 2 ) via a communication element 208. In some aspects, the communication element 208 may include one or more communication devices, such as a communication antenna and a radio, to send and receive message signals over a network between the electric meter 102 and the remote device. For example, the electric meter 102 may send a message including measured power consumption or other data to the remote device. The remote device may be communicatively coupled to multiple meters and may send the message over the network to a central system, such as a central system associated with an electric utility operator. In some aspects, the communication element 108 may send a message indicating an arc condition in the utility box 100. The central system may process the message and, in response, send a signal instructing the electric meter 102 to disconnect power to the building when an arc occurs.

[0023] The electric meter 102 can disconnect power to the building by opening disconnect switches 240A and / or 240B, as shown in FIG. 2 . Each of the disconnect switches 240A and 240B moves between a closed position and an open position. In the closed position, the disconnect switches 240A and 240B establish an electrical connection between the terminal pairs 224A / 228A and 224B / 228B, respectively. In the open position, the disconnect switches 240A and 240B disconnect the terminal pairs 224A / 228A and 224B / 228B, respectively. The disconnect switches 240A and 240B move between the closed position and the open position based on a control signal from the metering circuit 250. For example, the metering circuit 250 can include a disconnect circuit 222. The disconnect circuit 222 can include an actuator or other means for controlling the movement of the disconnect switches 240A and 240B between the closed position and the open position.

[0024] FIG. 3 is a cutaway side view of an electric meter 300 capable of detecting an arcing condition within a utility box according to some embodiments of the present disclosure. As shown in FIG. 3, the electric meter 300 includes a base plate assembly 302 and a housing assembly 304. In some examples, various components of the meter base 220 described above with respect to FIG. 2 are installed within the base plate assembly 302. For example, in FIG. 3, two meter blades 312 and 310 are connected by an electrical conductor 314, which passes through a ring formed by a current transformer structure 306. The meter blades 312 and 310 extend from the outside of a base plate 320 of the base plate assembly 302 so that they can be positioned within socket jaws of a meter socket when installed within a utility box.

[0025] 3, the housing assembly 304 of the electricity meter 300 includes a resistor cover 308, one or more printed circuit boards 318, and other components. The resistor cover 308, when connected to a base plate 320, covers the printed circuit board 318. In some examples, the printed circuit board 318 is located at the front end of the housing assembly 304, i.e., the end away from the base plate 320. In some examples, the measurement circuit 210 and the arc detection circuit 262 described above with respect to FIG. 2 are located on a single printed circuit board 318. In other examples, the measurement circuit 210 and the arc detection circuit 262 may be located on separate printed circuit boards 318.

[0026] FIG. 4 is an expanded view of the electric meter 300, including the base plate assembly 302, the housing assembly 304, and two alternative outer covers 420 for the electric meter 300. As shown in FIG. 4, the housing assembly 304 is used to hold the printed circuit board 318 at the end remote from the base plate 320. The base plate assembly 302 includes a current transformer structure 306 and a current transformer structure 406 (not visible in FIG. 3). The current transformer structures 306 and 406 correspond to the current transformer elements 236A and 236B, respectively, shown in FIG. 2. An electrical conductor 314 (or 408) passes through the ring formed by the current transformer structure 306 (or 406) and connects two blades configured to be placed in a meter socket. The leads 404 (or 410) of the current transformer and arc detection antenna may extend outside the current transformer structure 306 and be connected to their respective circuits. As shown in FIGS. 3 and 4, the current transformer structures 306 and 406 are mounted inside the base plate 320 and are adjacent to the base plate 320 .

[0027] 3, the current transformer structure 306 is in close proximity to the blade and therefore to the location where the arc occurs. Therefore, by locating the arc detection antenna inside the current transformer structure 306, more accurate arc detection can be achieved compared to locating the arc detection antenna in a location such as on or near the printed circuit board 318. Additionally, the arc detection antenna can be shielded from high voltages by utilizing the existing high voltage protection of the current transformer structure 306.

[0028] 5A and 5B illustrate an example of a current transformer structure 500 that may be installed in an electric meter to detect an arcing condition in a utility box, according to some embodiments of the present disclosure. The current transformer structure 500 may be used as the current transformer structure 306 or 406 shown in FIG. 4. In particular, FIG. 5A illustrates the assembled current transformer structure 500, and FIG. 5B illustrates various components of the current transformer structure 500.

[0029] 5A and 5B, the current transformer structure 500 includes a current transformer holder 502, a current transformer 504, an arc detection antenna 508, and a current transformer cover 510. The current transformer 504 corresponds to the current transformer 232A or 232B described above with respect to FIG. 2, and the arc detection antenna 508 corresponds to the arc detection antenna 234A or 234B of FIG. 2. The current transformer holder 502 can be connected to the current transformer cover 510 to form an enclosed donut-shaped space. The current transformer 504 and the arc detection antenna 508 are disposed adjacent to each other within the enclosed donut-shaped space between the current transformer holder 502 and the current transformer cover 510. The current transformer cover 510 may be connected or secured to the current transformer holder 502, for example, by latches 516 or other mechanical means, to securely hold the current transformer 504 and arc detection antenna 508 within the enclosed space.

[0030] 5B , the arc detection antenna 508 is disposed between the current transformer 504 and the current transformer cover 510. In another configuration, the arc detection antenna 508 is disposed between the current transformer 504 and the current transformer holder 502. When the arc detection antenna 508 is disposed between the current transformer 504 and the current transformer cover 510, the arc detection antenna 508 may be secured to the top surface of the current transformer 504, for example, through adhesive (e.g., epoxy), tape, or other adhesive material or mechanical means. Alternatively, or in addition, the arc detection antenna 508 may be secured to the inner surface of the current transformer cover 510 using an adhesive material or mechanical fastening means. Similarly, when the arc detection antenna 508 is disposed between the current transformer 504 and the current transformer holder 502, the arc detection antenna 508 may be secured to the bottom surface of the current transformer or the inner surface of the current transformer holder 502 using appropriate fastening means. In some examples, the current transformer cover 510 or the current transformer holder 502 may include a custom housing portion for holding the arc detection antenna 508 .

[0031] Leads 506 of current transformer 504 and leads 512 of arc detection antenna 508 are insulated from one another and extend outside the enclosed space of current transformer structure 500. Leads 506 and 512 can extend outside current transformer structure 500 through the same opening 514, as shown in FIG. 5B. In other configurations, they may pass through different openings.

[0032] While the above diagram depicts a two-phase solution for an electric meter in which two current transformer structures are installed on the electric meter, it should be understood that the presented technology is applicable to other types of electric meters. For example, a single-phase electric meter can include the current transformer structure presented herein to detect arcs occurring on the single-phase wiring. Similarly, a three-phase electric meter can include three current transformer structures presented herein to detect arc conditions in each phase. FIG. 6 shows an example of a base plate assembly for a three-phase electric meter incorporating three current transformer structures presented herein. Furthermore, it should be understood that in some examples, only one of the current transformer structures in a multi-phase electric meter includes an arc detection antenna for detecting arc conditions. In these examples, the arc detection antenna may be located within the current transformer structure of the centrally located phase so that the arc detection antenna is more equidistant to all blades.

[0033] While the present subject matter has been described in detail with reference to certain embodiments, it will be understood that those skilled in the art, armed with the foregoing understanding, may readily make modifications, variations, and equivalents to such embodiments. Accordingly, it should be understood that the present disclosure has been presented for purposes of illustration and not limitation, and is not intended to exclude the inclusion of modifications, variations, or additions to the present subject matter that would be readily apparent to those skilled in the art. Indeed, the methods and systems described herein may be embodied in a variety of other forms. Furthermore, various omissions, substitutions, and changes in the form of the methods and systems described herein may be made without departing from the spirit of the present disclosure. The appended claims and their equivalents are intended to cover such forms or modifications as fall within the scope and spirit of the present disclosure.

Claims

1. An electricity meter, the electricity meter is capable of detecting an electrical arc between the electricity meter and a meter socket in a utility box connected to an electric power line; the electricity meter comprises: a base plate assembly; and a housing assembly configured to be coupled to the base plate assembly; the base plate assembly includes an electrical conductor connecting two meter blades and a current transformer structure; each meter blade configured to be positioned within a corresponding socket jaw of the meter socket to electrically connect the electricity meter to the meter socket; The current transformer structure includes: a current transformer holder and a current transformer cover that form an enclosed space; a current transformer disposed within the enclosed space and inductively coupled to the electrical conductor; an arc detection antenna disposed within the enclosed space and axially adjacent to the current transformer, and thereby disposed between the current transformer and the current transformer cover or between the current transformer and the current transformer holder; the arc detection antenna leads extend outside the current transformer structure; the housing assembly includes a circuit board having arc detection circuitry configured to detect an electrical arc; the arc detection antenna leads are electrically connected to the arc detection circuit; Electricity meter.

2. 2. The electricity meter according to claim 1, wherein the arc detection antenna is fixed to the current transformer cover or the current transformer holder by a fixing means.

3. 2. The electricity meter of claim 1, wherein the arc detection antenna is secured to the current transformer by a securing means.

4. 2. The electric meter of claim 1, wherein the arc detection antenna is disposed at a location within the current transformer structure, the location being between the current transformer and an inwardly facing portion of a base plate of the current transformer structure.

5. 2. The electric meter of claim 1, wherein the circuit board is disposed at one end of the housing assembly, the one end being opposite the end coupled to the base plate assembly.

6. the leads of the arc detection antenna extend outside the current transformer structure through one or more openings in the current transformer holder or the current transformer cover; the current transformer leads extend through the one or more openings to outside the current transformer structure; the arc detection antenna leads and the current transformer leads are insulated from each other; 10. The electricity meter of claim 1.

7. 10. The electricity meter of claim 1, wherein the arc detection antenna is a loop antenna.

8. A current transformer structure, A current transformer cover, a current transformer holder that forms an enclosed space when connected to the current transformer cover; a current transformer disposed within the enclosed space; an arc detection antenna disposed within the enclosed space and axially adjacent to the current transformer, and thereby disposed between the current transformer and the current transformer cover or between the current transformer and the current transformer holder; the leads of the arc detection antenna extend outside the current transformer structure; Current transformer structure.

9. The current transformer structure according to claim 8 , wherein the arc detection antenna is fixed to the current transformer cover or the current transformer holder by a fixing means.

10. 9. The current transformer structure of claim 8, wherein the arc detection antenna is fixed to the current transformer by a fixing means.

11. further comprising a fastening means configured to fasten the current transformer cover to the current transformer holder; The securing means includes a latch. A current transformer structure according to claim 8.

12. 9. The current transformer structure of claim 8, wherein the arc detection antenna is disposed at a location within the current transformer structure, the location being between the current transformer and an inwardly facing portion of a base plate of the current transformer structure.

13. the leads of the arc detection antenna extend outside the current transformer structure through one or more openings in the current transformer holder or the current transformer cover; the current transformer leads extend out of the current transformer structure through the one or more openings; the arc detection antenna leads and the current transformer leads are insulated from each other; A current transformer structure according to claim 8.

14. 9. The current transformer structure of claim 8, wherein the arc detection antenna is a loop antenna.

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