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IF钢连铸头坯洁净度研究 总被引:7,自引:1,他引:7
应用氧氮成分分析、大样电解分析、扫描电镜分析、能谱分析等分析手段,研究了转炉—RH—连铸生产IF钢头坯洁净度的变化规律,并与正常坯洁净度水平进行对比分析。结果表明:沿拉坯方向头坯T[O]和[N]含量呈明显下降趋势。头坯大型夹杂物含量都明显高于正常坯,并沿拉坯方向总体呈减少趋势,4.4 m后大型夹杂物含量接近正常坯水平。铸坯中的大型夹杂物在厚度方向分布不均匀,内弧含量要明显高于外弧含量。头坯中大型夹杂物主要是尺寸为140~300μm和大于300μm两类,分别占总夹杂物质量分数的22.6%和56.8%,此类夹杂物主要来源于结晶器卷渣、中间包卷渣、二次氧化产物以及钢包引流砂。 相似文献
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通过氧氮分析、定量金相分析及大型夹杂物分析等试验方法,对某钢厂IF钢生产稳态及非稳态浇注的连铸坯进行了对比研究。结果表明,稳态坯w(T[O])和w(N)的平均含量分别为11×10-6和18×10-6,显微夹杂物含量平均为4.0个/mm2,大型夹杂物含量为2.10 mg/kg,洁净度较高。非稳态浇注对连铸坯洁净度有较大程度的危害。中间包开浇头坯受到较为严重的空气二次氧化,洁净度最差;钢包交换和更换浸入式水口时受到的空气二次氧化较小,但是钢渣反应和卷渣行为较为严重;尾坯洁净度受到空气二次氧化和卷渣的共同影响。连铸坯显微夹杂物含量分布,沿铸坯宽度方向一般1/4处最多,1/2处最少;沿铸坯厚度方向内外弧附近明显高于连铸坯中心部位。 相似文献
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夹杂物是影响IF钢表面质量的重要因素。对某厂生产的IF钢连铸坯和热轧板取样, 采用光学显微镜、扫描电镜、能谱、大样电解等多种检测分析方法, 分析了夹杂物的形貌、尺寸、数量、分布以及成分等。研究发现, 热轧工艺的轧制作用使连铸坯宽度方向1/4处聚集的夹杂物向边部迁移, 最终造成热轧板边部夹杂物指数最高, 说明夹杂物聚集带在轧制过程中具有遗传性。热轧板中20 μm以下夹杂所占百分比与连铸坯中夹杂相比稍有增大, 50 μm以上夹杂所占百分比稍有降低。热轧工艺的轧制作用将连铸坯中大颗粒氧化铝夹杂挤压变形为热轧板中的长条状, 容易形成表面条状缺陷。夹杂物在连铸坯距内弧侧30 mm处存在聚集现象, 热轧板中距内弧侧0.5 mm处夹杂物指数最高, 这是由于等效应变不同使夹杂物聚集带向表层迁移。IF钢连铸坯和热轧板中主要有4类显微夹杂, 分别为Al2O3类、TiN、Al2O3-TiOx和SiO2类复合夹杂, 且两者中各类夹杂物所占百分比差别不大。 相似文献
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拉速变化对IF钢铸坯非金属夹杂物含量的影响 总被引:2,自引:0,他引:2
采用原位统计分布分析仪(OPA)对IF钢连铸过程拉速变动对铸坯表层试样非金属夹杂物含量的影响进行了研究,发现在由较高拉速(1.4m/min)向低拉速(0.6m/min)变动时,对结晶器保护渣卷入的影响主要发生在降速初期,而随后的降速和低拉速下停止降速对铸坯表层试样夹杂物含量影响不大。当由较低拉速(0.6m/min)向高拉速(1.4m/min)变动时,对保护渣卷渣的影响主要发生在提升到高拉速后停止升速阶段,而低拉速时启动升速和随后均匀升速对铸坯夹杂物含量的影响不大。研究中还发现在较高拉速下(1.4m/min)即使较少量地变速,也会造成铸坯表层夹杂物含量的显著增加,因此在较高拉速时应避免对拉速进行变动或尽量采用低的拉速改变速率。采用数值模拟方法对拉速变化影响进行的研究结果同样表明,在较高拉速下发生的拉速变化,对结晶器内钢水流动有更显著的影响。 相似文献
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以某钢厂板坯连铸结晶器(断面尺寸:240mm×1400mm)为研究对象,采用数值模拟和水模实验相结合的研究方法,模拟了两种水口浇注条件下结晶器内流场和温度分布状况。实验发现原有水口存在上循环弱,热交换慢,保护渣融化不均匀等缺点是铸坯出现表面纵裂纹的主要原因;而新水口增强了结晶器内上循环速度,改善了结晶器弯月面区域温度分布的均匀性。工业大生产应用结果表明,新水口能明显地降低板坯表面纵裂纹发生率。 相似文献
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Thinslabcasting ,animportantnewtechnologyindevelopmentofironandsteelindustry ,isasignif icantbreakthroughinthefieldofnearnetshapeca stingtechnology .Althoughthethinslabcastinghasbeensuccessfullyappliedtoindustrialproduction ,itisstillexpectedtoimprovefurtherinthetermsofsteelgrades ,qualityandproductivity .Thekeyistomodifytheinternalshapeofmoldandsubmergeden trynozzle (SEN ) .Atpresent ,theinternalshapeofmoldandSENhasbeenfurtherstudiedtocastdif ferentqualitysteelsinChinaandothercountries[1,2… 相似文献
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Interfacial Fluctuation Behavior of Steel/Slag in Medium-Thin Slab Continuous Casting Mold With Argon Gas Injection 总被引:1,自引:0,他引:1
The flow field of molten steel and the interfacial behaviour between molten steel and liquid slag layer in medium-thin slab continuous casting mold with argon gas injection was studied by numerical simulation, in which the effects of nozzle submergence depth and port angle, casting speed, and argon gas flow rate on the flow and the level fluctuation of molten steel were considered. The results show that the molten steel jet from the submerged entry nozzle (SEN) with three ports into the mold and form three re-circulation zones including one upper re-circulation zone and two lower re-circulation zones. Argon gas injection results in a secondary vortex flow in the upper zone near the nozzle. For a given casting speed and argon gas flow rate, increasing the side port angle and submergence depth of nozzle can effectively restrain the steel/slag interfacial fluctuation. Increasing the casting speed would prick up the level fluctuation. For a fixed casting speed, argon gas flow rate has a critical value, the interfacial fluctuation with argon gas injection are stronger than the case without argon gas injection when the argon gas flow rate is less than the critical value, but when the argon gas flow rate exceeds the critical value, the level fluctuation is calmer than that without argon gas injection. 相似文献
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The flow field of molten steel and the interfacial behaviour between molten steel and liquid slag layer in medium-thin slab continuous casting mold with argon gas injection were studied by numerical simulation, in which the effects of nozzle submergence depth and port angle, casting speed, and argon gas flow rate on the flow and the level fluctuation of molten steel were considered. The results show that the molten steel is jetted from the submerged entry nozzle (SEN) with three ports into the mold and forms three recirculation zones including one upper recirculation zone and two lower recirculation zones. Argon gas injection results in a secondary vortex flow in the upper zone near the nozzle. For a given casting speed and argon gas flow rate, increasing the side port angle and submergence depth of nozzle can effectively restrain the steel/slag interfacial fluctuation. Increasing the casting speed would prick up the level fluctuation. For a fixed casting speed, argon gas flow rate has a critical value, the interfacial fluctuation with argon gas injection are stronger than the case without argon gas injection when the argon gas flow rate is less than the critical value, but when the argon gas flow rate exceeds the critical value, the level fluctuation is calmer than that without argon gas injection. 相似文献