首页> 外文期刊>Metallurgist >Calculation and Analysis of the Relationship Between the Efficiency and Position of Electric Arcs and Power Consumption in Electric Arc Furnaces (EAF) of Smaller and Larger Capacity. Part 2. Calculation and Analysis of the Relationship Between Position of Arcs, Walls and Power Consumption
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Calculation and Analysis of the Relationship Between the Efficiency and Position of Electric Arcs and Power Consumption in Electric Arc Furnaces (EAF) of Smaller and Larger Capacity. Part 2. Calculation and Analysis of the Relationship Between Position of Arcs, Walls and Power Consumption

机译:电弧效率与电弧炉(EAF)效率和位置与较大容量较大且较大容量的功耗的计算与分析。 第2.弧形,墙壁和功耗位置关系的计算与分析

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The power consumed during the melting process by a small-capacity DSP-5 furnace was analyzed. For each melting stage, the arc efficiency values of DSP-5 furnaces and average arc efficiency of the melting process (eta(AM) = 0.57) were calculated. The arc efficiency of the small-capacity furnaces is considerably lower than that of the modern large-capacity DSP-120 furnaces (eta(AAV) = 0.78). One cause of the lower arc efficiency of the small-capacity furnaces during furnace charge melting and arc burning inside the wells is the small distance between the arcs and the lining of the furnace walls. Another cause of the lower arc efficiency of the small-capacity furnaces during the liquid-phase periods of the melting process is the large exposed portion of the arc, no deep arc immersion into slag, and no slag foaming in the furnace. The low arc efficiency of the small-capacity furnaces leads to a significant specific power consumption during melting (700-750 kW center dot h/t), which is 1.9 to 2 times greater than that of the modern DSP-120 furnaces (375 kW center dot h/t). By using slag foaming devices in the small-capacity furnaces, it becomes possible to increase the average furnace arc efficiency of the melting process to eta(AM) = 0.72-0.74, while reducing the specific power consumption during melting to 400-420 kW center dot h/t.
机译:分析了通过小容量DSP-5炉在熔化过程中消耗的功率。对于每个熔化阶段,计算DSP-5炉的电弧效率值和熔化过程的平均电弧效率(ETA(AM)= 0.57)。小容量炉的电弧效率远低于现代大容量DSP-120炉的电弧效率(ETA(AAV)= 0.78)。在炉子电荷熔化期间,小容量炉较低效率的一个原因,孔内的电弧燃烧是炉壁的弧形和衬砌之间的距离。在熔化过程的液相周期期间,小容量炉的较低电弧效率的另一个原因是电弧的大暴露部分,没有深弧浸入炉渣中,并且在炉内没有炉渣。小容量炉的低电弧效率导致熔融(700-750千瓦中心点H / T)的明显特定功耗,比现代DSP-120炉(375kW)大的1.9至2倍。中心点H / T)。通过使用小容量炉中的矿渣发泡装置,可以将熔化过程的平均炉电弧效率增加到ETA(AM)= 0.72-0.74,同时降低熔化过程中的特定功耗至400-420千瓦中心点H / T.

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