Thermal Effects On Carbon Based Electrodes Close To A High Current Electric Arc

The Southern African Institute of Mining and Metallurgy
H. Palsson G. A. Saevarsdottir M. T. Jonsson J. A. Bakken
Organization:
The Southern African Institute of Mining and Metallurgy
Pages:
8
File Size:
330 KB
Publication Date:
Jan 1, 2007

Abstract

The electrodes of a Submerged Arc Furnaces carry a high current and are subject to enormous stresses caused by both the electric arc itself, and the current distribution within the electrode. The external effect of the arc on the electrode is treated in a different paper at this conference, The purpose of this paper is to analyze the thermal effects of ohmic heating within the electrode at the arc attachment on the carbon based electrode, using data for Søderberg electrodes. The thermal conditions are then used to examine stress conditions in the vicinity of an arc. Two types of models of an electrode are presented in the paper. The first type is an accurate finite element model, based on both two and three dimensional elements and the second type is an one dimensional model, providing better insight into the problem. For the second type, a spherical model of thermal conditions in a semi-infinite solid has been developed. Results show that the electrode surface is heated quickly up to a maximum temperature and for a specific test case, the surface can only withstand the load for about 10 seconds. Also, the thermal stresses on the surface are very high which will increase erosion on the surface in addition to normal evaporation.
Citation

APA: H. Palsson G. A. Saevarsdottir M. T. Jonsson J. A. Bakken  (2007)  Thermal Effects On Carbon Based Electrodes Close To A High Current Electric Arc

MLA: H. Palsson G. A. Saevarsdottir M. T. Jonsson J. A. Bakken Thermal Effects On Carbon Based Electrodes Close To A High Current Electric Arc. The Southern African Institute of Mining and Metallurgy, 2007.

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