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AbstractAbstract
[en] Direct measurement of the flow of electric current during VAR is extremely difficult due to the aggressive environment as the arc process itself controls the distribution of current. In previous studies the technique of “magnetic source tomography” was presented; this was shown to be effective but it used a computationally intensive iterative method to analyse the distribution of arc centre position. In this paper we present faster computational methods requiring less numerical optimisation to determine the centre position of a single distributed arc both numerically and experimentally. Numerical validation of the algorithms were done on models and experimental validation on measurements based on titanium and nickel alloys (Ti6Al4V and INCONEL 718). The results are used to comment on the effects of process parameters on arc behaviour during VAR. (paper)
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Source
lMPC2015: International symposium on liquid metal processing and casting 2015; Leoben (Austria); 20-24 Sep 2015; Available from http://dx.doi.org/10.1088/1757-899X/143/1/012012; Country of input: International Atomic Energy Agency (IAEA)
Record Type
Journal Article
Literature Type
Conference
Journal
IOP Conference Series. Materials Science and Engineering (Online); ISSN 1757-899X;
; v. 143(1); [8 p.]

Country of publication
ALLOY-NI53CR19FE19NB5MO3, ALLOYS, ALUMINIUM ADDITIONS, ALUMINIUM ALLOYS, CALCULATION METHODS, CHROMIUM ALLOYS, CORROSION RESISTANT ALLOYS, CURRENTS, DIAGNOSTIC TECHNIQUES, ELEMENTS, HEAT RESISTANT MATERIALS, HEAT RESISTING ALLOYS, INCONEL ALLOYS, IRON ALLOYS, MATERIALS, MATHEMATICAL LOGIC, METALS, MOLYBDENUM ALLOYS, NICKEL ALLOYS, NICKEL BASE ALLOYS, NIOBIUM ALLOYS, TITANIUM ADDITIONS, TITANIUM ALLOYS, TRANSITION ELEMENT ALLOYS, TRANSITION ELEMENTS
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