DocumentCode
1911844
Title
Conventional and current-dependent methods for predicting RMS arc currents in building systems
Author
Gammon, Tammy ; Matthews, John
Author_Institution
NC State Eng. Programs, UNCA, Asheville, NC, USA
fYear
2001
fDate
37012
Firstpage
75
Lastpage
82
Abstract
Arcing may be dynamic, explosive, intermittent, or self-extinguishing. In contrast, arcing may be self-sustaining and stable with a fairly constant current magnitude. Self-sustained arcs may release an enormous amount of energy over a fairly long period of time. Although arcing has been known to occur in 208Y/120 V and in single-phase 120 V systems sustained arcing is most commonly associated with 480Y/277 V systems. Short-circuit currents are limited by system impedance; since arcing-fault currents are further limited by arc voltage, the magnitude of the arcing-fault current is often insufficient to immediately trip overcurrent devices. Despite modern advances in system protection, people are critically injured or killed each year when they are in the vicinity of an arcing fault initiated by accidental physical contact or a glow-to-arc transition. The initial phases of an arcing-fault research project involved reviewing the arc physics and reexamining the early arc models, and developing improved arc models. This paper reviews short-circuit calculations and focuses on estimating the arcing-fault short-circuit ratios at several locations for a wide range of building systems. One suggested method of determining the RMS short-circuit ratios is based on a current-dependent arc model
Keywords
arcs (electric); power distribution faults; short-circuit currents; 120 V; 277 V; RMS arc currents prediction; accidental physical contact; arc voltage; arcing fault short-circuit ratios; arcing-fault currents; building electrical systems; constant current magnitude; current-dependent arc model; current-dependent methods; glow-to-arc transition; overcurrent devices trip; self-sustained arcs; short-circuit currents; single-phase systems; system impedance; system protection; Buildings; Circuit faults; Conductors; Electrical equipment industry; Explosives; Impedance; Power engineering and energy; Power transformer insulation; Protection; Voltage;
fLanguage
English
Publisher
ieee
Conference_Titel
Industrial and Commercial Power Systems Technical Conference, 2001. Conference Record. Papers Presented at the 2001 Annual Meeting. 2001 IEEE
Conference_Location
New Orleans, LA
Print_ISBN
0-7803-7055-4
Type
conf
DOI
10.1109/ICPS.2001.966515
Filename
966515
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