• 대한전기학회
Mobile QR Code QR CODE : The Transactions of the Korean Institute of Electrical Engineers
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Title Study on the Stabilization of Operating Performance of DC Earth Leakage Breaker Using Fluxgate DC Sensor
Authors 이기연(Ki-Yeon Lee) ; 임승택(Seung-Taek Lim) ; 오찬혁(Chan-Hyeok Oh) ; 유인호(In-Ho Ryu) ; 박정수(Jung-Soo Park)
DOI https://doi.org/10.5370/KIEE.2024.73.11.2085
Page pp.2085-2090
ISSN 1975-8359
Keywords DC distribution; Electrical safety; DC earth leakage breaker; Over-current leakage; Fluxgate sensor
Abstract In recent years, the need to use DC power distribution systems has increased and there has been a growing public interest in ensuring their safety. In particular, residual current devices (RCDs) are recognised as an important piece of protective equipment for users, preventing not only equipment accidents but also personal accidents. Therefore, it is necessary to verify the operation of DC RCDs in advance. Therefore, this paper investigates a stable sensor data processing method and algorithm of DC RCDs to ensure the safety of DC electrical equipment and protect people from electric shock. DC RCDs use a fluxgate current sensor as the DC ZCT, but as the fault current increases, the pulse generation frequency increases and distortion occurs. In addition, when the fault current is such that the core is saturated, the pulse generation is interrupted and the fault current is not detected and the breaker does not operate. To solve these problems, a data processing technique has been used which applies compensation by frequency analysis of the magnetic excitation circuit of the sensor to stabilize the operating performance of the protection device. The DC RCD developed in this paper can be used as a protective device to ensure the safety of DC equipment and to protect people from electric shock, and it is judged that it will contribute to ensuring electrical safety by ensuring safety in the event of a fault and taking appropriate preventive measures by confirming the exact cause of the operation of the protective device.