钢厂
无取向硅钢热轧边裂的形成原因
利用加热炉模拟、动态再结晶以及热模拟等试验方法以及扫描电镜、金相显微镜等分析观察手段对无取向硅钢边裂的成因进行了探讨。结果表明,长时间加热使得板坯边部晶粒异常长大,晶界氧化并脱碳,轧制过程中边部温度过低,动态再结晶过程变弱,使得板坯边部延伸性能变差,是导致硅钢边裂的主要原因。建议通过适当降低铸坯加热温度、缩短保温时间、提高终轧温度来改善硅钢边裂缺陷。 The behaviors of high temperature oxidation,dynamic recrystallization,and hot ductility,microstructure evolution were investigated on the non-oriented electrical steel sheets to discuss the formation of edge crack.The key causes of cracking was found to be the coarse as-cast microstructure,grain boundary oxidation and decarburization in reheating furnace,as well as reduced temperature at strip edge region during hot rolling process resulting in reduced hot ductility and lack of enough dynamic re...
50A1300牌号无取向硅钢磁性能改善工业实践
结合工业化生产的50A1300牌号无取向硅钢,分析了化学成分、RH精炼脱氧方式、板坯装炉温度以及热轧平整工艺等对磁性能的影响,探讨成品钢磁性能的改善。结果表明,采取改善后,50A1300牌号无取向硅钢的磁性能得到明显改善。2012年,该钢种平均铁损、磁感应强度分别达到5.26 W/kg、1.762 T,能够较好地满足用户市场需求及同行对标需要。 Based on the industrial manufacture of 50A1300 grade non-oriented silicon steel sheets,effects of chemical composition,deoxidization method in RH vacuum refining,charging temperature of steel slabs,hot rolling and flattening progress on magnetic properties are analyzed.The optimization methods of magnetic properties of steels are discussed. Results show that the magnetic properties are obviously improved by the adopted measures above. In 2012,the average core loss and the magnetic induction of 5...
硅元素对Fe-(4.5~7.0)%Si高硅钢组织和性能的影响
通过Axio Imager金相显微镜考察4.5%~7.0%硅(质量分数)对高硅钢材料组织形貌的影响,并利用Fe-6.5%Si高硅钢薄板制备方法对其进行轧制,通过DDL50电子万能试验机对阶段产品进行力学性能测试。结果证明,硅含量为5.58%的高硅钢在实验硅含量区间内存在最大延伸率及最小铸态组织晶粒尺寸。 An investigation about the influence of 4.5%-7.0% Si on microstructure and mechanical properties of high-silicon steel was presented.SEM was adopted to take an observation towards microstructure during fabrication,and DDL50electronic universal testing machine was applied into the detection of tensile curves.The results show that silicon steel with 5.58% Si provides the maximum elongation and minimum grain size as cast.
新能源车驱动电机用电工钢用量解析计算及预测方法
对新能源汽车以及驱动电机的现有市场和未来市场规模进行梳理分析,通过自建计算公式推导出我国2021年1-11月份驱动电机用电工钢的总量,进而预测未来10年中国新能源汽车驱动电机用电工钢情况,为无取向电工钢的生产和在电机中的应用提供有价值的参考。 The current market and future market size of new energy vehicles and traction motors were analyzed,and the total amount of electrical steels used in traction motors in China from January to November 2021 was derived by using self-built calculation formulas,and then the situation in the next ten years of electrical steel used in traction motors of new energy vehicles in China was predicted.It will provide a valuable reference for the production of non-grain oriented electrical steel and its appli...
CN202111195012.0高硅无取向电工钢及其生产方法
本发明揭示了一种高硅无取向电工钢及其生产方法。该方法包括:1)钢水冶炼并连铸成坯;2)加热并保温,之后热轧得到热轧卷板,其中粗轧出口温度940±20℃,精轧终轧温度840±20℃,卷取温度650±20℃;3)常化,常化温度((732~742)+3000[Si])℃,常化时长4min~5min;4)常化后直接进行冷轧,而后连续退火和涂层,退火温度940℃~990℃且退火时长1.5min~3min;5)涂层处理后的钢板加工成型,而后进行去应力退火,退火温度为((761~766)+3000[Si])℃。如此,在保证磁性能的同时,解决了冷轧难度大的问题。
CN202111414457.3一种高磁感取向硅钢实验室轧机一次冷轧方法
本发明公开了一种高磁感取向硅钢实验室轧机一次冷轧方法,包括:1)取样,实验室冷轧材料选取经过常化酸洗后的厚度为2.3mm的取向硅钢试样;2)制样,利用取向硅钢专用剪板机,裁剪试样尺寸为轧向600mm×横向150mm;将试样表层轻涂一层薄薄的轧制油;3)冷轧轧制规程制定,轧前厚度为2.3mm;其中:轧制总道次为6次时轧后厚度为0.35mm,轧制总道次为7次时轧后厚度为0.27mm,轧制总道次为8次时轧后厚度为0.23mm。本发明的目的是提供一种高磁感取向硅钢实验室轧机一次冷轧方法,为工业试制提供一定的技术参考,以及后续工艺研究提供了更加可靠的试样和条件。
轧制法制备低铁损高磁感6.4%(质量分数)硅钢及其织构演变
采用轧制法制备出具有低铁损高磁感0.23mm厚6.4%(质量分数)Si高硅钢。沿轧制方向的最终磁性能为B8=1.474 T,B50=1.714 T;P10/50=0.30W/kg,P15/50=0.88W/kg。利用X射线衍射及背散射电子衍射(EBSD)技术分析了高硅钢在轧制及退火过程中的织构演变过程。结果表明,通过采用大压下率热轧,确保热轧板次表层中产生更多的高斯织构,随后进行遗传;温轧板中粗大的晶粒有利于冷轧剪切带的形成;冷轧板经脱碳退火后生成强{210}〈001〉织构及次表层较强的高斯织构是在轧向上获得高磁感的原因,归因于其在{111}〈112〉冷轧形变晶粒内的剪切带优先形核并长大;最终退火后虽出现了随机取向,但以{310}〈001〉织构为代表的η织构得以保留并且增强,进一步提高了磁感。随着退火温度的升高及保温时间的延长,高硅钢薄板晶粒尺寸不断增大,铁损明显降低。 6.4wt%Si high silicon steel sheets(0.23mm thick)with low iron loss and high magnetic induction were successfully produced by rolling process.The final magnetic properties along the rolling direction(RD) were:B8=1.474T,B50=1.714T;P10/50=0.30 W/kg,P15/50=0.88 W/kg.The texture evolution during rolling and annealing was investigated by means of X-ray diffraction and electron backscatter diffraction(EBSD).It was found that more Goss textures formed in the subsurface of hot rolled plates by using larg...
大压下率冷轧无取向硅钢织构演变及性能
组织和织构是影响无取向硅钢性能的重要因素。为改善产品性能,研究了冷轧压下率(71.7%~87.0%)对高牌号无取向硅钢组织、织构、磁性能和力学性能的影响。结果表明,随冷轧压下率的增加,退火晶粒平均尺寸先减小后增大;高斯和立方织构强度减弱,γ纤维织构增强,α纤维织构转变为较强的α*({h, 1, 1}〈1/h, 1, 2〉)织构,并随冷轧压下率的增加而增强,同时其峰值逐渐向{111}面移动;工频铁损P1.5/50、高频铁损P1.0/400和磁极化强度J5000同时降低,屈服强度变化不大,表面硬度逐渐增加。当冷轧压下率由84.7%增至87.0%、厚度减至0.30 mm时,高频铁损降幅是工频铁损的11倍,表面硬度增幅变大。以上研究成果对硅钢减薄后织构及组织的优化提供了很好的指导。 Microstructure and texture are critical factors on non-oriented silicon steel properties. In order to improve product properties, this paper studied the effect of cold rolling reduction rate(71.7%-87.0%) on microstructure, texture, magnetic properties and mechanical properties of high-grade non-oriented silicon steel. The results show that with the increase of cold rolling reduction rate, the average size of annealing grain decreases first and then increases. The intensity of Goss and λ fiber te...
硅钢连退机组无氧化炉加热能力计算
无氧化炉具有加热效率高、投资与运营成本低、作业率高、表面质量及板型良好、NOx排放相对低等优势,在硅钢热处理领域应用前景广泛。本文阐述了确定无氧化炉(NOF)加热能力详细过程,涵盖炉温、炉断面尺寸、炉长、热平衡结算、加热能力计算等,为今后无氧化炉(NOF)在硅钢热处理应用时的设计提供了借鉴,同时也为今后明火直接加热的工业炉设计提供了参考。 Non-oxidation furnace has the advantage s of high heating efficiency, low investment and operation cost, high operation rate, good surface quality and plate shape, and relatively low NOxemission,and it still has wide application prospect in the field of silicon steel heat treatment. The detailed process of determining the heating capacity of a non-oxidizing furnace(NOF) is described, covering furnace temperature, furnace section size, furnace length, heat balance settlement, heating capacity cal...
CN202023181223.2一种无取向硅钢厚涂层涂层液生产用纯水制水机
本实用新型公开了一种无取向硅钢厚涂层涂层液生产用纯水制水机,包括底板,底板顶端的两侧分别固定设有固定座和存水筒,固定座顶端的中部设有蒸馏组件,蒸馏组件包括球形釜,球形釜设置在固定座的顶部,球形釜的外部固定套设有导热层,导热层的内部固定嵌设有电热丝,导热层的外部固定套设有隔热层,本实用新型的有益效果是:通过设置的电热丝通过导热层对球形釜内部的水进行加热,球形釜提供更加均匀的受热效果,水蒸气通过V形管进入L形管,通过设置的环状冷却管内部的液氮对水蒸气进行冷却,便于提供更高效的蒸馏处理,通过设置的防腐蚀磁铁网格滤板、无纺布滤层、活性炭滤层和高密度滤网层,便于提供更好的过滤效果。
CN202110008865.2一种通过粉末烧结制备高磁性能含磷硅钢薄片的方法
一种通过粉末烧结制备高磁性能含磷硅钢薄片的方法,属于粉末冶金技术领域。本发明通过真空熔炼气雾化制备成分范围为Fe‑(3‑6.5)wt.%Si‑(0.05‑1)wt.%P的合金粉,将其放置在陶瓷坩埚中均匀振实并放置重物压住,随后进行高温烧结使其冶金结合,再经热轧、冷轧、退火等处理后,得到具有优异性能的含磷硅钢薄片。本发明在硅钢材料体系中加入P元素,能够有效降低铁损、优化磁性能并促进活化烧结;采用气雾化粉末能够很好地保证产品的少夹杂和纯净度;在低熔点P元素及粉末压烧的协同作用下解决了球形气雾化粉末难以成形的缺陷,并避免了需添加成形剂导致的工艺复杂性及后续的脱胶残碳问题,有效缩短制备工艺流程,具有操作简单、生产效率高、工艺流程短、性能优异等优点。