{"id":3690,"date":"2026-09-10T05:27:27","date_gmt":"2026-09-10T05:27:27","guid":{"rendered":"https:\/\/acrel.pl\/?post_type=case&p=3690"},"modified":"2026-09-10T05:27:34","modified_gmt":"2026-09-10T05:27:34","slug":"arb-arc-flash-protection-application-in-low-voltage-power-distribution-systems-for-semiconductor-manufacturing-facilities","status":"publish","type":"case","link":"https:\/\/acrel.pl\/ru\/case\/arb-arc-flash-protection-application-in-low-voltage-power-distribution-systems-for-semiconductor-manufacturing-facilities\/","title":{"rendered":"ARB Arc-Flash Protection Application in Low-Voltage Power Distribution Systems for Semiconductor Manufacturing Facilities"},"content":{"rendered":"\n
Abstract<\/strong>:\u00a0Arc-flash faults in switchgear assemblies are among the most severe types of failures. The resulting arc light can easily damage other components, leading to accident escalation and often causing significant economic losses. Arc-flash protection, by monitoring both arc light intensity and current variations, can promptly isolate faults, providing effective protection and reducing economic losses. This paper introduces the application and configuration schemes of the ARB series arc-flash protection devices for busbars in low-voltage power distribution systems, as well as for critical individual cubicles such as capacitor compensation cabinets and active filter cabinets. From this, the necessity of installing arc-flash protection becomes readily apparent.<\/p>\n\n\n\n Keywords<\/strong><\/strong>:\u00a0Arc-flash fault; Arc-flash protection; Low-voltage power distribution system<\/p>\n\n\n\n 1. Project Overview<\/strong><\/strong><\/p>\n\n\n\n This project involves a power capacity expansion for a semiconductor production base of a certain microelectronics equipment company, located in the Beijing Economic-Technological Development Area (BDA), Yizhuang. A total of two substation rooms are established within the facility, with a total added capacity of 25,000 kVA. This expansion takes place in the Phase II plant, where a new main substation is constructed, adding five 2,500 kVA transformers, repurposing one existing 2,500 kVA transformer, and re-routing four original 2,500 kVA transformers to the new main substation. Additionally, a new sub-distribution substation is built, adding four 2,500 kVA transformers, connected to the existing Phase I main substation. In total, this includes 9 new 2,500 kVA transformers and 1 repurposed 2,500 kVA transformer, summing to 25,000 kVA.<\/p>\n\n\n\n 2. Project Requirements<\/strong><\/strong><\/p>\n\n\n\n Switchgear or busbars are prone to arc-flash generation due to insulation degradation, operational errors, equipment aging, and other reasons. When an arc-flash fault occurs, it releases tremendous energy, creating extreme temperatures and various arc effects that threaten personnel safety, damage equipment, and cause significant financial losses. To ensure the safety and reliability of the power supply system, the 0.4kV switchgear in this project requires arc-flash protection configuration.<\/p>\n\n\n\n Main Substation 0.4kV Switchgear:<\/strong> Consists of 22 MNS low-voltage distribution cabinets, including 4 low-voltage incoming cabinets, 2 bus-tie cabinets, 8 capacitor cabinets, 4 feeder and active filter cabinets, and 4 feeder cabinets. The single-line diagrams for Transformers 9# (11#) and 10# (12#) in the main substation are shown below.<\/p>\n\n\n\n