电工钢 ›› 2026, Vol. 8 ›› Issue (2): 13-19.

• • 上一篇    下一篇

硅铝含量对硅钢高温导热系数的影响及其制造工艺优化

张凤泉 ¹,²,张华 ¹,²,朱英韬 ¹,刘涛 ¹,²,倪红卫 ¹,²    

  1. (1. 武汉科技大学先进电工钢与非晶合金工程中心,湖北武汉 430081;2. 武汉科技大学冶金与能源学院,湖北武汉 430081)

  • 出版日期:2026-04-28 发布日期:2026-04-29

Effect of silicon‑aluminum content on high‑temperature thermal conductivity of silicon steel and optimization of its manufacturing process

ZHANG Fengquan¹,², ZHANG Hua¹,², ZHU Yingtao¹, LIU Tao¹,², NI Hongwei¹,²   

  1.  (1.Advanced Electrical Steel and Amorphous Alloy Engineering Center, Wuhan University of Science and Technology, Wuhan 430081, China; 2.School of Metallurgy and Energy, Wuhan University of Science and Technology, Wuhan 430081, China)
  • Online:2026-04-28 Published:2026-04-29

摘要:

硅钢高温导热行为的研究较为缺乏,制约了其制造工艺的开发和优化。本文详细测定了不同硅铝含量的系列牌号无取向硅钢、取向硅钢和低碳钢在 200~1400℃范围内的导热系数。当温度超过 1000℃时,硅钢的导热系数随温度升高而反常增大,在 1400℃时反而高出低碳钢约 10W/(m・K)。利用硅钢高温高导热系数,可提高连铸坯拉速和出坯温度,同时可将抑制剂控制前移至连铸坯段,从而降低热轧加热炉的均热温度,并大幅减少在炉时间;而且能够实现板坯直接轧制,提高产品性能。此外,利用硅钢高温下的高导热系数能够提高铸坯拉速,实现连铸‑粗轧‑精轧‑冷却的高通量匹配,消除间歇时间,确保产品质量稳定,实现显著节能。 

关键词:

硅钢, 硅铝含量, 高温导热系数, 高拉速, 制造工艺优化

Abstract:

Studies on the high‑temperature thermal conductivity of silicon steel are relatively scarce, which restricts the development and optimization of its manufacturing processes. In this work, the thermal conductivities of a series of non‑oriented silicon steel, oriented silicon steel and low‑carbon steel grades with different silicon‑aluminum contents were comprehensively measured in the temperature range of 200℃ to 1400℃. The results show that when the temperature exceeds 1000℃, the thermal conductivity of silicon steel increases abnormally with the rise of temperature, being about 10W/(m·K) higher than that of low‑carbon steel at 1400℃. Taking advantage of the high thermal conductivity of silicon steel at elevated temperatures, the casting speed and exit temperature of continuous casting billets can be increased. Meanwhile, inhibitor control can be shifted to the continuous casting billet stage, which reduces the soaking temperature of hot rolling furnaces and greatly shortens the furnace residence time. Furthermore, this characteristic enables direct slab rolling and improves product performance. In addition, the high‑temperature thermal conductivity of silicon steel helps to increase the billet casting speed, realize high‑throughput matching of continuous casting, rough rolling, finish rolling and cooling processes, eliminate intermittent downtime, ensure stable product quality and achieve remarkable energy‑saving effects. 

Key words: silicon steel, silicon-aluminum content, high-temperature thermal conductivity, high casting speed, manufacturing process optimization