首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到17条相似文献,搜索用时 140 毫秒
1.
针对高铁难选铁尾矿嵌布粒度细、传统选矿很难将其与脉石矿物分离的问题,采用了深度还原对其进行处理。在高温下进行的深度还原,加入助熔剂可有效降低还原温度,减少能耗。通过深度还原还原剂用量、助熔剂用量和温度、焙烧时间、磨矿细度以及磁选强度条件试验,确定工艺最佳条件为:原矿:无烟煤:Na2CO3=7∶4∶4,还原温度1 050℃,还原时间30 min,磨矿细度-0.074 mm占88.6%,一段磁选,磁场强度100 k A/m下,经综合试验最终产品品位达到90.04%,回收率93.53%。  相似文献   

2.
针对鄂西高磷鲕状赤铁矿,采用煤基还原焙烧-磁选工艺制备直接还原铁,研究了还原剂用量、焙烧温度、焙烧时间、助熔剂等对还原焙烧效果的影响规律。研究结果表明:在焙烧温度为1 100℃,焙烧时间为50 min,还原剂用量为30%,助熔剂为碳酸钠和硫酸钠、用量分别为15%和30%时,磨矿磁选后获得直接还原铁的铁品位91.13%,铁的回收率78.87%,残留S含量0.03%,P含量0.09%,满足电炉炼钢原料要求。本文方法为同类型铁矿石的综合开发利用提供了充分的技术支持。  相似文献   

3.
红土镍矿直接还原焙烧磁选回收铁镍   总被引:5,自引:2,他引:3  
采用添加助熔剂直接还原焙烧-磁选方法,对镍主要以硅酸镍形式存在的低品位红土镍矿中镍和铁的富集进行了研究. 结果表明,同时添加助熔剂,可获得较好的技术指标. 最佳工艺条件为:煤作还原剂,质量分数为15%;KD-2为助熔剂,质量分数为20%;焙烧温度为1200℃;焙烧时间为40min. 在此条件下可以得到镍品位10.83%、铁品位52.87%、镍回收率82.15%和铁回收率54.59%的镍铁精矿. 用X射线衍射(XRD)和透射电镜(TEM)对还原过程中助熔剂和煤的作用机理进行了研究. 发现KD-2可以与原矿中含镍的石英和硅酸盐矿物反应,释放出其中的镍;煤用量太多时可生成部分不含镍的金属铁,会造成镍的回收率降低.  相似文献   

4.
高铁铝土矿直接还原—溶出工艺   总被引:3,自引:0,他引:3  
提出了一种以Na2CO3为添加剂、以煤为还原剂的还原分离方法,将原矿中铁的氧化物还原为铁单质粉末通过磁选分离回收,将水铝石矿物转化为铝酸钠溶出分离回收.通过单因素实验考察了还原温度、还原时间、Na2CO3用量和还原剂用量对粉末铁品位、铁回收率和氧化铝溶出率的影响,并用X射线衍射分析、扫描电镜观察和能谱分析等方法研究了反应的过程和机理.通过正交试验优化了实验参数,获得的最优条件为还原温度1150℃,还原时间45 min,Na2CO3用量40.47%,还原剂用量11.9%;在最优条件下,粉末铁品位为95.88%,铁回收率为89.92%,氧化铝溶出率为75.92%.  相似文献   

5.
针对传统选矿方法难以回收低品位红土镍矿中有价金属镍的问题,采用选择性还原焙烧法研究了不同焙烧温度以及不同焙烧时间条件下红土镍矿(Ni品位为1.49%)中发生的微观结构变化以及相变转化.通过X射线衍射、扫描电镜及X射线能谱分析等测试手段分析表明,在不同焙烧温度及不同时间条件下经选择性还原后的红土镍矿中,镍氧化物逐渐被还原成镍铁合金相,铁氧化物主要转变成浮氏体相,硅酸盐主要以橄榄石形式存在.最后通过还原焙烧磁选试验证实,还原剂为烟煤,添加剂为NCS,两者用量分别为原矿质量的2%和7%,在1200℃条件下焙烧50 min,磁选分离得到镍铁产品中镍品位为9.78%,镍的回收率为92.06%,镍铁回收率差为62.51%,实现了红土镍矿中镍铁的选择性还原.  相似文献   

6.
深度还原-弱磁选回收稀土尾矿中铁的试验研究   总被引:1,自引:0,他引:1  
对某全铁品位为1625%的稀土尾矿进行了深度还原-弱磁选回收铁试验研究,研究了还原剂种类及用量、焙烧温度及时间、磨矿细度及磁场强度对铁精矿品位和回收率的影响,并采用SEM,XRD等手段对稀土尾矿、焙烧产物、铁精矿进行了测试.结果表明,在烟煤质量分数30%,焙烧温度1300℃,焙烧时间60min,磨矿细度-0074mm占75%,磁场强度118kA/m的条件下,所得铁精矿TFe品位可达8076%,铁回收率可达9324%;稀土尾矿经深度还原后,其中的赤、褐铁矿、硅酸铁等含铁矿物转化为单质铁,铁精矿品位和回收率较常规选矿方法大幅度提高,同时脉石矿物组成简单,有利于萤石的富集回收.  相似文献   

7.
研究还原剂种类及用量对高磷鲕状赤铁矿还原焙烧铁磷分离的影响.添加脱磷剂Na2CO3,在提铁降磷的同时能降低还原铁的硫含量;还原剂用量的增加都能促进铁还原,但使用灰分和固定碳含量较高或挥发分含量较低的还原剂时,不利于降磷.焙烧产物的X射线衍射分析表明:添加脱磷剂Na2CO3时,随着还原剂用量的增加,焙烧产物中金属铁含量增加,浮氏体和石英含量降低;使用灰分含量较高的还原剂时,随其用量的增加,灰分会消耗Na2 CO3,从而减弱其对于铁还原的促进作用;还原剂用量相同时,石煤、烟煤、焦炭和褐煤所得焙烧产物中金属铁含量逐渐增加,浮氏体含量逐渐降低.总体来看,褐煤作为还原剂时铁磷分离效果最好,其次为烟煤,焦炭和石煤.  相似文献   

8.
模拟链篦机-回转窑工艺直接还原磁选回收铜渣尾矿中的铁,试验研究了碱度、预热温度、预热时间、还原温度、还原时间及煤矿比等因素对铁精矿质量的影响.结果表明:碱度为0.3,预热温度为1 000℃,预热时间为9 min,还原温度为1 200℃,还原时间为70 min,煤矿比为2:1,焙烧矿球磨时间为20 min(小于0.074 mm,占95%左右)以及磁场强度为0.08 T的条件下,铁品位及回收率均达到90%以上.  相似文献   

9.
对隧道窑直接还原焙烧--磁选法处理低品位难选赤铁矿石进行了探讨,重点研究助还原剂NCP的作用及机理.以煤作还原剂,质量分数为20%,CCO和NCP为助还原剂,质量分数分别为15%和5%,在焙烧温度为1200℃,焙烧时间为8 h的条件下,可以得到铁品位92.61%、铁回收率92.38%的铁精矿.利用X射线衍射和扫描电镜对助还原剂NCP的作用机理进行分析.结果表明NCP可以与原矿中石英发生反应,生成硅钠石和钠长石,破坏原矿结构,使还原性气体更易与赤铁矿接触发生还原反应生成金属铁.  相似文献   

10.
基于煤基焙烧还原-磁选工艺,进行了宣龙式难选鲕状赤铁矿石提铁过程及其影响因素的实验研究.以铁精矿品位和铁回收率为评价指标,确定了适合于该类矿石的最佳工艺条件:焙烧还原温度为1 200℃,还原剂用量为30%,焙烧还原时间为60min,焙烧产物磁选前的磨矿细度为-45μm占96.19%,磁选的磁场强度为111kA.m-1.在该工艺条件下,可以使铁精矿品位达到92.53%,铁回收率达到90.78%.  相似文献   

11.
高铝硅氰化渣中铁回收工艺   总被引:1,自引:0,他引:1  
研究一种处理磁选前高铝硅氰化渣的新工艺。采用复合添加剂焙烧-水浸-磁选工艺对一种铁品位为27.69%(质量分数),SiO2含量为23.9%,Al2O3含量为6.35%的高铝硅氰化渣进行杂质与铁分离的研究。研究结果表明:在最佳焙烧条件下,当水浸温度为60℃,液固比为15:1,水浸时间为5 min,转速为20 r/min,在激磁电流为2 A时,可获得铁品位57.11%,铁的回收率为72.58%的铁精矿。铁的品位和回收率都比单纯的复合添加剂还原焙烧-磁选法所获得的铁精矿的指标高,铁的品位提高了10%左右,回收率提高了30%左右。X线荧光(XRF),X线衍射(XRD)及能谱(EDS)分析研究结果表明:经水浸后,复合添加剂焙烧过程中所产生的可溶性复杂杂质化合物被洗除,不溶性物质经磁选后随之进入非磁性物,实现铁与杂质矿物之间的有效分离。  相似文献   

12.
The present investigation examines the viability of dolochar, a sponge iron industry waste material, as a reductant in the reduction roasting of iron ore slimes, which are another waste generated by iron ore beneficiation plants. Under statistically determined optimum conditions, which include a temperature of 900℃, a reductant-to-feed mass ratio of 0.35, and a reduction time of 30-45 min, the roasted mass, after being subjected to low-intensity magnetic separation, yielded an iron ore concentrate of approximately 64wt% Fe at a mass recovery of approximately 71% from the feed iron ore slime assaying 56.2wt% Fe. X-ray diffraction analyses indicated that the magnetic products contain magnetite and hematite as the major phases, whereas the nonmagnetic fractions contain quartz and hematite.  相似文献   

13.
对高炉灰在直接还原焙烧-弱磁选工艺中用作印尼某海滨钛磁铁矿还原剂的可行性及其机理进行研究.结果表明,以萤石为添加剂的条件下,高炉灰可代替煤做还原剂,通过高炉灰与萤石的共同作用,可以在直接还原过程中提高还原铁粉中铁的回收率及品位并降低TiO2质量分数,同时回收高炉灰中铁.三种不同产地高炉灰还原效果的比较表明,高炉灰性质对还原效果有影响.在相同用量条件下,津鑫高炉灰( JX)还原效果最好;在JX高炉灰用量30%、萤石用量10%、焙烧温度1250益以及焙烧时间为60 min时,焙烧产物通过两段磨矿和两段磁选,最终得到最佳的还原铁粉中铁品位为91.28%,TiO2质量分数降至0.93%,包括海滨砂矿和高炉灰中铁的铁总回收率达到89.19%.  相似文献   

14.
Lead, zinc, and iron were recovered from jarosite residues using direct reduction followed by magnetic separation. The influence of the coal dosage, reduction temperature, and reduction time on the volatilization rates of lead and zinc and the metallization rate of iron were investigated. The results show that the volatilization rates of lead and zinc were 96.97% and 99.89%, respectively, and the iron metallization rate was 91.97% under the optimal reduction roasting conditions of a coal dosage of 25.0wt% and reduction roasting at 1250℃ for 60 min. The magnetic concentrate with an iron content of 90.59wt% and an iron recovery rate of 50.87% was obtained under the optimum conditions in which 96.56% of the reduction product particles were smaller than 37 μm and the magnetic field strength was 24 kA/m. Therefore, the results of this study demonstrate that recovering valuable metals such as lead, zinc, and iron from jarosite residues is feasible using the developed approach.  相似文献   

15.
Currently, the majority of copper tailings are not effectively developed. Worldwide, large amounts of copper tailings generated from copper production are continuously dumped, posing a potential environmental threat. Herein, the recovery of iron from copper tailings via low-temperature direct reduction and magnetic separation was conducted; process optimization was carried out, and the corresponding mineralogy was investigated. The reduction time, reduction temperature, reducing agent (coal), calcium chloride additive, grinding time, and magnetic field intensity were examined for process optimization. Mineralogical analyses of the sample, reduced pellets, and magnetic concentrate under various conditions were performed by X-ray diffraction, optical microscopy, and scanning electron microscopy-energy-dispersive X-ray spectrometry to elucidate the iron reduction and growth mechanisms. The results indicated that the optimum parameters of iron recovery include a reduction temperature of 1150℃, a reduction time of 120 min, a coal dosage of 25%, a calcium chloride dosage of 2.5%, a magnetic field intensity of 100 mT, and a grinding time of 1 min. Under these conditions, the iron grade in the magnetic concentrate was greater than 90%, with an iron recovery ratio greater than 95%.  相似文献   

16.
红土镍矿深度还原-磁选富集镍铁实验研究   总被引:2,自引:0,他引:2  
采用深度还原-磁选工艺,以煤粉为还原剂,添加氧化钙作助溶剂,在微熔化,不完全造渣的条件下,将矿石中镍和铁的氧化物还原成金属镍铁,然后经磁选方法使金属镍铁在磁性产品中得到富集.结果表明,深度还原最佳工艺条件为:还原温度1 300℃,还原时间60 min,配煤过剩倍数2.在此工艺条件下得到镍、铁质量分数分别为5.01%,22.46%的镍铁产品,镍、铁回收率分别为96.05%,79.69%.对深度还原过程研究表明,还原物料中镍和铁以金属合金颗粒形式存在,高温有利于镍铁金属相凝聚,适当延长还原反应时间有利于镍铁颗粒的还原和聚集长大,进而有利于磁选富集.  相似文献   

17.
An innovative method for recovering valuable elements from vanadium-bearing titanomagnetite is proposed. This method involves two procedures:low-temperature roasting of vanadium-bearing titanomagnetite and water leaching of roasting slag. During the roasting process, the reduction of iron oxides to metallic iron, the sodium oxidation of vanadium oxides to water-soluble sodium vanadate, and the smelting separation of metallic iron and slag were accomplished simultaneously. Optimal roasting conditions for iron/slag separation were achieved with a mixture thickness of 42.5 mm, a roasting temperature of 1200℃, a residence time of 2 h, a molar ratio of C/O of 1.7, and a sodium carbonate addition of 70wt%, as well as with the use of anthracite as a reductant. Under the optimal conditions, 93.67% iron from the raw ore was recovered in the form of iron nugget with 95.44% iron grade. After a water leaching process, 85.61% of the vanadium from the roasting slag was leached, confirming the sodium oxidation of most of the vanadium oxides to water-soluble sodium vanadate during the roasting process. The total recoveries of iron, vanadium, and titanium were 93.67%, 72.68%, and 99.72%, respectively.  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号