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不锈钢冶炼用AOD炉内的射流行为和流体流动 被引量:5
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作者 朱苗勇 周海斌 +1 位作者 陈兆平 黄宗泽 《金属学报》 SCIE EI CAS CSCD 北大核心 2006年第6期653-656,共4页
在分析氩-氧脱碳(AOD)炉内侧吹射流行为特征的基础上,建立了描述AOD炉内三维流动的数学模型,考察了喷吹气体流量和喷枪布置对AOD熔池内湍流场的影响规律.结果表明,供气强度对AOD炉内射流流股轨迹和钢液流动产生明显影响;多枪喷吹,使熔... 在分析氩-氧脱碳(AOD)炉内侧吹射流行为特征的基础上,建立了描述AOD炉内三维流动的数学模型,考察了喷吹气体流量和喷枪布置对AOD熔池内湍流场的影响规律.结果表明,供气强度对AOD炉内射流流股轨迹和钢液流动产生明显影响;多枪喷吹,使熔池中流场和湍动能分布变得更加合理.计算结果与物理模型的观测结果吻合. 展开更多
关键词 Ar-O脱碳(aod) 不锈钢冶炼 侧吹 气体射流 流体流动
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AOD的氧流量对氩气耗量的影响
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作者 赵航 白春 《钢铁》 CAS CSCD 北大核心 1995年第S1期36-39,共4页
冶炼不锈钢时,吹入熔池的氧会先与钢水中的铬生成氧化铬并吸附在气泡表面,随气泡上浮熔池中的碳将氧化铬还原:,还原过程的限速步骤是熔池中的碳向气泡表面的扩散。若熔池与气泡表面的碳浓度差小,则扩散速度小,还原速度慢,气泡浮... 冶炼不锈钢时,吹入熔池的氧会先与钢水中的铬生成氧化铬并吸附在气泡表面,随气泡上浮熔池中的碳将氧化铬还原:,还原过程的限速步骤是熔池中的碳向气泡表面的扩散。若熔池与气泡表面的碳浓度差小,则扩散速度小,还原速度慢,气泡浮至顶渣时尚有部分氧化铬未被还原而进入顶渣,发生铬的烧损。AOD将氩气混到氧中吹入,使气泡内CO分压降低,气泡表面的碳浓度随之降低,碳的浓度差增大,以避免铬的烧损。分析表明,氧流量越大,需要混入的氩气越少。 展开更多
关键词 aod 氩耗 氧流量
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AOD炉氧枪射流参数的优化
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作者 江虹 朱小宁 《吉林大学学报(信息科学版)》 CAS 2014年第3期258-261,共4页
为提高侧顶复吹AOD(Argon Oxygen Decarburization Furnace),即氩氧精炼法过程中的脱碳效率,提出对侧枪射流方式进行改进和参数优化,提高AOD炉寿命和降低耐火材料消耗。采用改进的N-S方程及湍流方程,对侧枪的射流参数建立模型,得到不同... 为提高侧顶复吹AOD(Argon Oxygen Decarburization Furnace),即氩氧精炼法过程中的脱碳效率,提出对侧枪射流方式进行改进和参数优化,提高AOD炉寿命和降低耐火材料消耗。采用改进的N-S方程及湍流方程,对侧枪的射流参数建立模型,得到不同参数下,侧枪倾角和吹气速度对AOD精炼过程的影响。当枪个数为7、倾角为18°、射流速度为52.12 Nm3/h时是最佳工况。分析结果表明,通过对AOD炉冶炼时侧枪的射流建立并改进N-S模型,可以有效提高AOD炉炉龄。 展开更多
关键词 aod N-S方程 侧吹 流体流动
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Physical and Mathematical Modeling of the Argon-Oxygen Decarburization Refining Process of Stainless Steel 被引量:5
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作者 魏季和 《Journal of Shanghai University(English Edition)》 CAS 2002年第1期1-23,共23页
The available studies in the literature on physical and mathematical modeling of the argon oxygen decarburization (AOD) process of stainless steel have briefly been reviewed. The latest advances made by the author wi... The available studies in the literature on physical and mathematical modeling of the argon oxygen decarburization (AOD) process of stainless steel have briefly been reviewed. The latest advances made by the author with his research group have been summarized. Water modeling was used to investigate the fluid flow and mixing characteristics in the bath of an 18 t AOD vessel, as well as the 'back attack' action of gas jets and its effects on the erosion and wear of the refractory lining, with sufficiently full kinematic similarity. The non rotating and rotating gas jets blown through two annular tuyeres, respectively of straight tube and spiral flat tube type, were employed in the experiments. The geometric similarity ratio between the model and its prototype (including the straight tube type tuyeres) was 1:3. The influences of the gas flow rate, the angle included between the two tuyeres and other operating parameters, and the suitability of the spiral tuyere as a practical application, were examined. These latest studies have clearly and successfully brought to light the fluid flow and mixing characteristics in the bath and the overall features of the back attack phenomena of gas jets during the blowing, and have offered a better understanding of the refining process. Besides, mathematical modeling for the refining process of stainless steel was carried out and a new mathematical model of the process was proposed and developed. The model performs the rate calculations of the refining and the mass and heat balances of the system. Also, the effects of the operating factors, including adding the slag materials, crop ends, and scrap, and alloy agents; the non isothermal conditions; the changes in the amounts of metal and slag during the refining; and other factors were all considered. The model was used to deal with and analyze the austenitic stainless steel making (including ultra low carbon steel) and was tested on data of 32 heats obtained in producing 304 grade steel in an 18 t AOD vessel. The changes in the bath composition and temperature during the refining process with time can be accurately predicted using this model. The model can provide some very useful information and a reliable basis for optimizing the process practice of the refining of stainless steel and control of the process in real time and online. 展开更多
关键词 stainless steel argon oxygen decarburization (aod) process fluid flow and mixing back attack phenomenon non rotating and rotating gas jets DECARBURIZATION water modeling mathematical modeling.
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