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本发明公开了一种高磁感取向硅钢,其含有Fe及不可避免的杂质元素,其还含有质量百分含量如下的下述各化学元素:C:0.02~0.08%,Si:2.0~4.5%,Mn:0.02~0.30%,S≤0.0050%,Als:0.01~0.04%,N:0.002~0.01%,Nb:0.0050~0.0600%;以及P:0.01~0.1%,Sn:0.01~0.30%,Cu:0.01~0.50%的至少其中一种。此外,本发明还公开了上述高磁感取向硅钢的制造方法,其包括步骤:(1)制得板坯;(2)板坯加热;(3)热轧,其包括:粗轧、在热卷箱内卷取保温,以及精轧;其中粗轧结束温度高于970℃;卷取温度为800~1050℃,卷取时间为30~200s;精轧开始温度低于1050℃;(4)冷轧;(5)脱碳退火;(6)渗氮;(7)涂覆退火隔离剂;(8)高温退火;(9)涂覆绝缘涂层和激光刻痕。
2021-10-19 78 6.8

本实用新型公开了一种硅钢片冲压模具,包括上模和下模,上模和下模之间通过导向杆连接,下模上设有出料槽,出料槽的底部设有一磨盘,磨盘通过齿轮连接电机。本实用新型结构设计合理巧妙,当硅钢片冲压下落时,磨盘通过电机带动转动,对硅钢片的周围进行打磨,使硅钢片边缘平整,叠铆时上下不易错位。
2020-12-28 78 6.8

本发明涉及取向硅钢技术领域,且公开了一种气耗优化成本较低的取向硅钢高温退火工艺,包括如下步骤:S1、将铸坯装炉装炉前先对炉台利用高压空气进行清扫,将通气管内的粉尘或其它杂质吹扫干净,然后根据钢卷的卷径大小选用与之匹配的料盘和料筐,将铸坯放入炉内;S2、炉台密封将装有铸坯的炉台完全密封。该种气耗优化成本较低的取向硅钢高温退火工艺,在高保温阶段使用氨分解气,而氨分解气相对氢气而言比较稳定,在生产成本上也较氢气低,大大的降低了成本节约了能耗,在低保温阶段是为了消除应力,形成一次再结晶晶粒,进行脱碳,高保温阶段二次再结晶,净化钢质和形成烧结硅酸镁底层,最后退火完成后,完成烧结绝缘涂层、热拉伸平整。
2020-12-14 78 6.8

通过对湿H2气氛下,相同退火温度、不同退火时间的CGO硅钢初次再结晶样品进行金相组织观察,并进行了EBSD微观织构分析,研究了CGO硅钢初次再结晶过程中的组织及再结晶织构演变行为。结果表明,在湿H2气氛下,820℃保温,CGO硅钢初次再结晶过程约在120 s时完成。随着退火时间的延长,γ面上{111}<112>织构含量逐渐减少,{111}<110>织构先减少后增多,随着再结晶的完成,部分{111}<112>取向晶粒向高斯{110}<001>取向转化的同时,也向{111}<110>取向转化,高斯{110}<001>织构含量逐渐增多。高斯取向晶粒较多是由{111}<112>取向晶粒转化而来,同时也证明了CGO硅钢高斯取向晶粒的二次再结晶异常长大生长机制为择优形核。 Microstructure development and texture evolution of conventional grain oriented silicon steel,which were annealed at same annealing temperature and different annealing time under wet H2 atmosphere,were investigated through metallographic observation and electron backscattered diffraction analyzing.The results show that the primary recrystallization finishes in 120 s at 820 ℃ under wet H2 atmosphere.With the extending of annealing time,{111}<112> texture decreases,{111}<110> texture d... 
2012-12-28 78 5.8

通过对3%Si CGO硅钢进行恒变形速率、不同变形温度下的单道次压缩实验,结合Thermal-Calc软件,金相分析,SEM及EBSD技术,研究了取向硅钢热变形过程中组织和微观织构的变化规律。结果表明:实验钢是在双相区变形,变形后组织主要是铁素体和少量的珠光体。随变形温度的升高,晶粒由长条状变为等轴状,尺寸逐渐变大;CGO硅钢在热变形过程中立方{100}<001>取向是较为稳定存在的。随着变形温度的提高,{111}<110>等取向逐渐转向{110}<1 10>取向,且{110}<1 10>取向逐渐变得锋锐。 3% Si CGO silicon steel was studied at constant strain rate and different deformation temperatures by single-pass compression deformation experiments to reveal the evolution of microstructure and texture during thermal deformation in oriented silicon steel,and the Thermal-Calc software,metallurgical,SEM and EBSD technique was used in the experiment. The results show that experimental steel is deformed at the temperatures of two-phase zone. The microstructure of the deformed steel consists of fer... 
2014-05-28 78 5.8

本发明是高磁感取向硅钢的脱碳退火工艺,首先对硅钢卷进行放卷、活套、清洗;再对硅钢进行脱碳、渗氮处理,氨气流量6‑20m3/h、加湿槽温度30‑70℃,脱碳温度780‑880℃、机组速度45‑75m/min、气氛中氢气比例20‑60%、氮气比例40%‑80%,然后冷却到常温;对硅钢进行活套;再对硅钢进行涂覆氧化镁,涂覆量4‑10g/㎡;最后对硅钢进行干燥和收卷成硅钢卷;通过本发明对高磁感取向硅钢的脱碳退火工艺流程进行了优化设计,调整了脱碳退火工艺中氨气流量、气氛、加湿槽水温等参数,优化了高磁感取向硅钢中碳元素、氮元素和氧元素的含量,最终使高磁感取向硅钢实现稳定的性能,磁感达1.92T。
2021-04-23 78 6.8

本发明公开了一种用于取向硅钢卷的焊缝切除方法,包括在焊接机组完成钢卷焊接后,在距离焊缝预设距离位置处冲孔;而后,钢卷到达成品退火工序时,利用孔洞检测装置检测焊缝冲孔,并根据焊缝冲孔得到焊缝位置,并记录该焊缝位置;并在分卷工序中,根据记录得到的焊缝位置对焊缝进行切除。这样,该方法利用焊缝冲孔,结合孔洞检测装置,将焊缝位置信息传递到分切工序,使得焊缝识别切除率较高,有效解决了取向硅钢焊缝无法精准定位切除的问题,实现了卷中焊缝多工序结合精准切除。
2020-12-16 78 6.8

试验研究了退火温度(850~950℃)和时间(5~18 min)对2.3 mm热轧硅钢板(/%:0.036C,3.15Si,0.21Mn,0.005P,0.007S,0.032A1)6道次轧制的0.35 mm冷轧板组织和织构的影响。结果表明,退火温度越高,晶粒平均尺寸越大,900℃5 min退火时平均晶粒尺寸41.39μm,试样织构主要集中在γ取向线上的{111}<112>织构组分和{111}<110>织构组分;900℃18 min退火时平均晶粒尺寸为48.08μm,试样的{111}面织构和{112}面织构密度都明显减弱,{001}面织构增强,磁性能较优。 The effect of annealing temperature(850 ~950 ℃) and holding time(5 ~ 18 min) on structure and texture of 0.35 mm sheet by 6 passes cold-rolling from 2.3 mm hot-rolled plate of silicon steel(/%:0.036 C,3.15 Si,0.21 Mn,0.005 P,0.007 S,0.032A1) has been tested and studied.Results show that the higher the annealing temperature the coarser the average grain size;As annealing at 900 ℃ for 5 min the average grain size of steel sheet is 41.39 μm,and the texture in sample is mainly concentrated in y orie... 
2014-06-28 78 5.8

某厂对电工钢的轧制策略进行了优化,粗轧道次由“1+5”改为“1+3”。在优化后的生产过程中,每次变换钢种,烫辊材就会出现窄尺现象,而紧随其后的电工钢板则出现超宽现象。文中针对该问题,介绍了宽度设定模型和宽度自适应模型的原理,阐述了该问题出现的原因及解决方案,并通过对宽度自适应模型的应用研究及优化攻关,有效地解决了问题,大幅提升了实物质量,降低了宽度封锁率。 The rolling strategy of electrical steel was optimized in a factory,and the rough rolling pass was changed from “1+5”to“1+3”.Subsequently,the following problems were occurred in the production process:when the steel grade changed,the roasting roller steel before the electrical steel appeared the narrow width phenomenon,and then the electrical steel appeared the ultra-wide phenomenon.This paper introduced the principle of width setting model and width adaptive model,and expounded the causes and s... 
2022-02-28 78 5.8

本发明公开了一种超高效变频空调压缩机用无取向硅钢薄带及其制造方法,属于无取向硅钢技术领域。本发明包括以下重量百分比的组分:C≤0.003%,Si:2.0%~2.5%,Mn:0.15%~0.5%,Als:0.3%~0.7%,Sn:0.05%~0.11%,S≤0.003%,P≤0.03%,B:0.002%~0.004%,Ca:0.003%~0.005%,N≤0.003%,Ti≤0.003%,其余为Fe及不可避免的杂质,且Mn/S比控制在20~60范围内,B/N比控制在0.7~1.5,Ca/S的比例≥1。为解决现有技术中存在的问题,本发明通过添加合金元素以及偏析元素,配合连铸、热轧、常化和连续退火等热处理工艺,以及优良的冷轧板形控制技术,实现0.30~0.35mm厚度薄规格的高效无取向硅钢产品,具备优异的磁性能和高屈强比的力学性能,满足高效变频空调压缩机电机磁性能和关节式定子高速冲裁对力学性能和板形的高标准要求。
2021-11-30 78 6.8

本发明揭示了一种无取向硅钢及其生产方法。该无取向硅钢的化学成分:Si:2.95%~3.15%,Al:0.75%~0.95%,Si+2Al:4.6%~4.9%,Mn:0.5%~0.7%,Sn:0.03%~0.04%,Cu≤0.03%,Cr≤0.03%,Ni≤0.03%,Nb≤0.004%,V≤0.004%,Ti≤0.004%,C≤0.0025%,P≤0.015%,S≤0.0015%,N≤0.004%,余量铁;Mn/S≥380,Al/N≥200;无取向硅钢的再结晶晶粒尺寸50~80μm。本发明在保证磁性能的同时,提高了强度,解决了现有技术所存在的磁性能和强度的兼顾问题。
2021-10-26 78 6.8

借助OM、激光共聚焦显微镜、质谱仪和电解萃取等设备和方法,研究了添加微量稀土La(质量分数0.001 1%)的取向硅钢在轧制前采用不同加热保温时间对抑制剂固溶行为的影响。结果表明:当稀土取向硅钢在1 250℃分别保温10、20、30 min后,试验钢晶粒尺寸随保温时间延长有先快后慢的长大趋势;三种抑制剂元素Mn、Cu和Al均发生固溶,保温时间对Mn和Cu两种元素的固溶影响明显,固溶量分别由69.8%和43.7%增加至84.2%和85.2%;随着保温时间的延长,稀土取向硅钢中抑制剂的小尺寸未溶物逐渐减少直至消失,较大尺寸未溶物(300~600 nm)逐渐转变为小尺寸未溶物逐步溶入基体中,数量减少且未溶物的类型由复杂逐渐转变为单一。 In this paper the solid solution behavior of the inhibitor under various holding time in 0.001 1 %La oriented silicon steel during reheating had been investigated by using OM, LM, methods of electrolytic extraction and mass spectrometer. The results showed that grain size of the test steel increased significantly with the holding time prolonging when the rare earth oriented silicon steel was heated to1 250 ℃ and held for 10, 20 min and 30 min respectively, and the growth trend slowed down after ... 
2022-02-28 78 5.8

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