Simulation of gas dynamics of oxygen flow and hydrodynamics of cooling water flow in tuyere tips with tangential optimized nozzles and results of their pilot tests.

A. V. Sushchenko, A. B. Lyatin
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Abstract

The blowing mode largely determines the technical and economic indicators of BOF smelting, which was confirmed during the technological audit of the BOF shop of Azovstal Iron and Steel Works, carried out in 2021. It was found that the blowing mode of the process using an oxygen lance of the basic design was noticeably shifted from the optimal one in the direction of “hard” blowing. In a significant number of melts this led to an increase in the specific consumption of metal sheets, deterioration of lime assimilation by slag, dephosphorization and desulphurization of the metal. Taking into account that adjustment of the blowing mode by changing the working height of blowing and oxygen consumption did not provide a stable positive result, changes were made in the design of the tuyere tip. The design of the head with tangential arrangement of nozzles is proposed to “soften” the blowing of melts. The advantages and dis-advantages of oxygen lances of this type are considered. Numerical modeling of the gas dynamics of the oxygen flow and the hydrodynamics of the flow of cooling water in a tip with a tangential arrangement of nozzles has been per-formed. On the basis of simulation results, two variants of an improved design of the tips of 350-t LD converters with five (variant 1) and four (variant 2) main peripheral tangentially oriented nozzles and a central nozzle of lower throughput were developed to use them mainly in the second and first periods of the campaign according to the lining of the converters, respectively. It is shown that the design parameters of the nozzle blocks provide an oxygen jet outflow regime close to the design one in the main range of oxygen operating flow rates and a “non-separated” outflow regime with a decrease in the off-design ratio down to 0.8. The design parameters of the cooling system provide both an acceptable loss of water pressure in the head (0.9 MPa), the absence of local low-speed vortex zones of water, and a fairly high average coolant flow rate along the most heat-stressed (the lower) surface of the tip (about 4.5 m/s). As a result of industrial testing of a pilot batch of experimental heads with five main peripheral tangentially oriented nozzles, manufactured at the plant’s own repair and mechanical base, an increase in the resistance of copper tips was found to be 1.2 times, the resistance of lances to removal for cleaning from accretion was found to be 6.8 times, reduction in the specific consumption of metal charge by 0.9–5.6 kg/t, an increase in the dephosphorization and desulfurization coefficients of metal in the converter by 0.7–1.5 and 1.3–3.2%, respectively.
模拟氧气流的气体动力学和带有切向优化喷嘴的风口冷却水流的流体动力学及其试验结果。
吹炼方式在很大程度上决定着转炉冶炼的技术和经济指标,这一点在 2021 年对亚速尔钢铁厂转炉车间进行的技术审核中得到了证实。检查发现,使用基本设计的氧气喷枪的吹炼方式明显偏离了最佳吹炼方式,向 "硬 "吹炼方向偏移。在大量熔化过程中,这导致金属板的具体消耗量增加、炉渣对石灰的同化作用下降、金属脱磷和脱硫。考虑到通过改变吹风工作高度和氧气消耗量来调整吹风模式并不能带来稳定的积极效果,因此对风口的设计进行了修改。为了 "软化 "熔化物的吹炼,提出了喷嘴切向排列的头部设计。考虑了这种氧气喷枪的优缺点。对氧气流的气体动力学和带有切向排列喷嘴的喷嘴头中冷却水流的流体动力学进行了数值模拟。在模拟结果的基础上,开发了 350 t LD 转换器顶端改进设计的两个变体,分别带有五个(变体 1)和四个(变体 2)主要外围切向喷嘴和一个吞吐量较低的中央喷嘴,根据转换器的衬里,分别主要用于活动的第二和第一阶段。结果表明,在氧气运行流速的主要范围内,喷嘴块的设计参数提供了一种接近设计的氧气喷射流出机制,以及一种 "非分离 "流出机制,非设计比率降低到 0.8。冷却系统的设计参数提供了可接受的水头水压损失(0.9 兆帕)、不存在局部低速水涡流区以及沿尖端最受热(下部)表面相当高的平均冷却剂流速(约 4.5 米/秒)。通过对该厂自己的维修和机械基地制造的一批带有五个主要外围切向喷嘴的实验喷头进行工业测试,发现铜喷嘴的阻力增加了 1.2 倍,发现喷枪在清除积垢时的阻力为 6.8 倍,金属装料的具体消耗量减少了 0.9-5.6 公斤/吨,转炉中金属的脱磷和脱硫系数分别提高了 0.7-1.5% 和 1.3-3.2%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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