Insulation Monitoring Systems in Low-Voltage IT Networks—A Review
Abstract
1. Introduction
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- Automatic disconnection of supply,
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- Double or reinforced insulation,
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- Electrical separation (usually one item of current-using equipment; for more than one item only if the installation is supervised),
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- Extra low-voltage (SELV, PELV),
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- Non-conducting location,
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- Earth-free local equipotential bonding.
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- principles for designing low-voltage network layouts, conditions for the effectiveness of protection against electric shock, with a strong emphasis on the IT network,
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- a review of insulation monitoring systems in IT networks—from historical to contemporary solutions,
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- requirements for insulation monitoring systems in specific applications (ship IT networks, PV farms),
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- a comparative summary of the advantages and disadvantages of insulation monitoring systems.
2. Motivation for the Paper and Bibliographic Analysis
3. Types of Grounding in Low-Voltage Networks
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- the first letter (indicates the connection of the source with the ground):
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- T—there is a direct connection to the ground of one point, usually the neutral point, and if it is unavailable, the line conductor,
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- I—indicates that the live parts are isolated from the ground or one point is connected to the ground through a high impedance,
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- the second letter (indicates connecting the exposed-conductive parts with the ground, usually in consumer installations):
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- T—there is a direct connection of the exposed-conductive parts with the ground; this must be a ground electrode independent of the ground electrode of the power source,
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- N—there is a direct connection of exposed-conductive parts with the grounded point of the network power source.
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- S—the protective function is performed by the PE protective conductor separated from the neutral conductor (when the neutral point is not available, the PE conductor is separated from the grounded line conductor),
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- C—a common PEN (protective earthing–neutral) conductor is used, providing both a protective and a neutral conductor function.
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- for RCD as a disconnecting device
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- for overcurrent protection (circuit breaker, fuse) as a disconnecting device
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- for a system without a neutral conductor N
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- for a system with neutral conductor N
4. Overview of Insulation Monitoring Systems in IT Networks
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- Conducting the measurement without interrupting the power supply to the loads.
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- Conducting the measurement in a way that prevents accidental destruction or damage to the insulation of the tested network.
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- Conducting the measurement using the minimum amount of additional measuring equipment and electrical devices.
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- Appropriate level of security for the person carrying out the measurement as well as for the staff operating the network being tested. It has to be noted here that the measurement method used should not violate even the short-term condition of isolating the network from the ground, which in the case of measurement systems having a galvanic connection of live parts to the ground should ensure a sufficiently high impedance of them.
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- Possibly a short and sufficiently accurate measurement while ensuring a relatively low amount of preparatory activities.
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- Within a galvanically connected IT network, only one IMD is permitted. The implication of this fact is the need to install additional insulation monitoring systems in individual network areas separated, for example, by a step-down transformer.
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- The capacitances-to-ground of the IT system should not affect the measured insulation resistance values, except during the transient states. This situation applies only to methods that, due to their operating principle, do not allow the measurement of the capacitive component of the insulation impedance.
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- In networks with an N neutral conductor, the insulation of this conductor relative to the ground should also be measured.
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- The use of power electronic converter devices in the system requires that the converter outputs be also monitored.
5. Discussion and Conclusions
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- Possibility of long-term operation with a single-phase ground fault (it should be noted here that the minimum time for removing such a fault is not specified). Networks of this type enable the increase of the reliability of the power supply (can work with a single ground fault).
- •
- Relatively low values of the ground current (compared to TN and TT systems), which ultimately results in increased fire safety.
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- Limitation of the body current value in the event of body contact with the wire of one phase while maintaining high values of the insulation impedance of the remaining phases.
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- Possibility of checking the insulation resistance status and using monitoring/measurement devices with alarm and disconnection of supply functions in the event of detecting single-phase ground faults or exceeding the minimum permissible insulation resistance values of the monitored circuits.
- •
- The lack of possibility of precise location of the place where a ground fault occurs—in practice such a place is located by selective and area-based disconnection of loads, which—in the case of a network with a significant spatial span and a large number of loads—relatively extends the duration of the fault.
- •
- The need to ensure high service standards and continuous monitoring of the insulation condition.
6. Future Directions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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| Atmospheric Conditions | Capacitance CE | Insulation Resistance Rinsul |
|---|---|---|
| unfavorable (high humidity in the morning, frost) | ≤150 nF/kW | ≥1 kΩ (power approx. 1 MW) ≥100 kΩ (power approx. 100 kW) |
| favorable (dry PV system during the day) | ≤5 nF/kW | values 10–100 times higher than in unfavorable conditions |
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| Insulation Monitoring Device (IMD) | Insulation Fault Location System (IFLS) | ||||||
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| Network deenergized 1 | Network energized | ||||||
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| Medical systems | Safety services (e.g., fire and rescue services) | Emergency lighting | Maritime and aviation systems | PV systems | Mine undergrounds | Chemical industry | |
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| 1. Passive methods | 2. Active methods | ||||||
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| Method (Referred to Table 2) | Advantages | Disadvantages | Remarks |
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| I |
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| K, L |
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| M, N |
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| O, P |
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Frącz, A.; Czapp, S. Insulation Monitoring Systems in Low-Voltage IT Networks—A Review. Energies 2026, 19, 4396. https://doi.org/10.3390/en19184396
Frącz A, Czapp S. Insulation Monitoring Systems in Low-Voltage IT Networks—A Review. Energies. 2026; 19(18):4396. https://doi.org/10.3390/en19184396
Chicago/Turabian StyleFrącz, Arkadiusz, and Stanislaw Czapp. 2026. "Insulation Monitoring Systems in Low-Voltage IT Networks—A Review" Energies 19, no. 18: 4396. https://doi.org/10.3390/en19184396
APA StyleFrącz, A., & Czapp, S. (2026). Insulation Monitoring Systems in Low-Voltage IT Networks—A Review. Energies, 19(18), 4396. https://doi.org/10.3390/en19184396
