Title :
Control algorithm of high power rectifier system in DC arc furnace for improved arc stability
Author :
Kyungsub Jung ; Yongsug Suh ; Taewon Kim ; Taejun Park ; Yongjoong Lee
Author_Institution :
Dept. of Electr. Eng., Chonbuk Nat. Univ., Jeonju, South Korea
Abstract :
Fundamental features of the arc stability in DC arc furnace of 720V/100kA/72MW have been investigated. Cassie-Mayr arc model has been employed and applied for the target DC arc furnace. In order to characterize the parameters of Cassie-Mayr arc model and the behavior of unstable arc dynamics, the advanced arc simulations of magneto-hydrodynamics (MHD) has been performed. From the results of MHD simulation, DC arc dynamic resistance is proposed to be an effective arc stability function reflecting the instability of dynamic arc behavior. A control strategy of high power rectifier system to regulate the arc stability function is also proposed in this paper. The simulation and experimental result confirm the usefulness of proposed dynamic arc resistance as arc stability function along with the active control strategy. The proposed arc stability function can be regarded as an effective criterion for the overall power conversion system to maintain highly stable arcing operation leading to better productivity and reliability in a DC arc furnace.
Keywords :
arc furnaces; magnetohydrodynamic convertors; power convertors; rectifying circuits; Cassie-Mayr arc model; DC arc dynamic resistance; DC arc furnace; MHD simulation; active control strategy; arc stability function; control algorithm; current 100 kA; high power rectifier system; improved arc stability; magneto-hydrodynamics simulation; power 72 MW; power conversion system; unstable arc dynamics; voltage 720 V; Furnaces; Integrated circuit modeling; Mathematical model; Rectifiers; Resistance; Stability criteria;
Conference_Titel :
Energy Conversion Congress and Exposition (ECCE), 2013 IEEE
Conference_Location :
Denver, CO
DOI :
10.1109/ECCE.2013.6647138