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[1]陈志友,石 晴,冯其明*.周期式高梯度磁选机磁系磁场的分析与应用[J].武汉工程大学学报,2017,39(05):482-487.[doi:10. 3969/j. issn. 1674?2869. 2017. 05. 014]
 CHEN Zhiyou,SHI Qing,FENG Qiming*.Research and Application of Magnetic Field for Periodic High Gradient Magnetic Separator[J].Journal of Wuhan Institute of Technology,2017,39(05):482-487.[doi:10. 3969/j. issn. 1674?2869. 2017. 05. 014]
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周期式高梯度磁选机磁系磁场的分析与应用(/HTML)
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《武汉工程大学学报》[ISSN:1674-2869/CN:42-1779/TQ]

卷:
39
期数:
2017年05期
页码:
482-487
栏目:
资源与土木工程
出版日期:
2017-12-19

文章信息/Info

Title:
Research and Application of Magnetic Field for Periodic High Gradient Magnetic Separator
文章编号:
20170514
作者:
陈志友石 晴冯其明*
中南大学资源加工与生物工程学院,湖南 长沙 410083
Author(s):
CHEN ZhiyouSHI QingFENG Qiming*
School of Resources Processing and Bioengineering,Central South University,Changsha 410083,China
关键词:
磁选机螺线管线圈磁场特性仿真磁分离
Keywords:
magnetic separatorsolenoid coilmagnetic field characteristicsimulationmagnetic separation
分类号:
TD97
DOI:
10. 3969/j. issn. 1674?2869. 2017. 05. 014
文献标志码:
A
摘要:
当励磁电流为200 A时,计算了周期式高梯度磁选机线圈轴线轴向和距轴线0.15 m处径向的磁感应强度,并运用ANSYS有限元分析软件分析了屏蔽铁铠和磁极对线圈磁场特性的影响,同时采用该设备进行了高岭土磁分离除铁实验. 结果表明,距线圈中心0.1 m轴线轴向为0.326 T的均匀磁场,随着与中心距离的增加磁感应强度大幅下降;距轴线0.15 m径向的磁感应强度很小,在端面效应的作用下达到最大值0.064 T;安装屏蔽铁铠和磁极,线圈中心均匀磁场的磁感应强度提高至0.95 T. 在矿浆流速为0.7 cm/s,背景磁感应强度为1.1 T下,一次磁选将高岭土的Fe2O3的质量分数由1.35%降至0.63%,白度由68%提高至89%.
Abstract:
Magnetic induction intensity of the radial axis and 0.15 m from the axis of the coil in periodic high gradient magnetic separator were calculated at an excitation current of 200 A. The influences of shielded iron armor on magnetic field characteristics of the coil were analyzed by ANSYS finite element analysis software as well. Simultaneously, kaolin magnetic separation and iron removal experiment were carried out. The results showed that axial magnetic induction intensity around 0.1 m of the coil center was in a uniform magnetic field of 0.326 T, and the magnetic induction decreased significantly with the distance from center increasing. The magnetic induction of the site of 0.15 m around the axis was very small in the radial direction, and the maximum value of that was 0.064 T by the end effect. The magnetic induction of the uniform magnetic field in the coil center might increase to 0.95 T after an armored iron and a magnetic pole in the solenoid coil were installed. When the background magnetic induction intensity was 1.1 T at pulp flow rate of 0.7 cm/s, the mass fraction of Fe2O3 in kaolin reduced from 1.35% to 0.63%, and the whiteness of it increased from 68% to 89% by one magnetic separation only.

参考文献/References:

[1] 陈丽昆,李亦然,王军,等. 超导磁分离工艺替代化学漂白用于高岭土除杂增白的可行性研究[J]. 非金属矿,2014,37(3):57-59. CHEN L K,LI Y R,WANG J,et al. Research on using superconducting magnetic separation as a substitute for chemical bleaching in kaolin treatment[J]. Non-Metallic Mines,2014,37(3):57-59. [2] 夏光华,李晓鸣,苏小丽. 混合捕收剂去除高岭土中含铁矿物试验研究[J]. 地质找矿论丛,2012,27(1):121-124. XIA G H,LI X M,SU X L. The experiment research on iron removal from kaolin by using mixed collecting agent[J]. Contributions to Geology and Mineral Resources Research,2012,27(1):121-124. [3] TUNCUK A, CIFTLIK S, AKCIL A. Factorial experiments for iron removal from kaolin by using single and two-step leaching with sulfuric acid[J]. Hydrometallurgy,2013,134/135(3):80-86. [4] CAO W, XIA G H, LU M, et al. Iron removal from kaolin using binuclear rare earth complex activated thiourea dioxide[J]. Applied Clay Science,2016,126:63-67 [5] 郑水林,杜玉成,毛钜凡,等. 煤系高岭土氯化焙烧除铁增白工艺及机理研究[J]. 矿冶,1997,6(3):66-69. ZHENG S L,DU Y C,MAO J F,et al. Study on chloridizing roasting process and mechanism of kaolin containing coal[J]. Mining and Metallurgy,1997,6(3):66-69. [6] 陈俊明,钟森林,谢宝华,等. ZQS周期式高梯度磁选机的研制和应用[J]. 现代矿业,2016 (7):235-236. CHEN J M,ZHONG S L,XIE B H,et al. Development and application of ZQS periodic high gradient magnetic separator[J]. Modern Mining,2016 (7):235-236. [7] 王龙. 电磁浆料高梯度磁选机的优化改进及在非金属矿磁选中的应用[J]. 陶瓷,2016(1):31-34. WANG L. Optimization and improvement of high gradient magnetic separator for electromagnetic slurry and its application in non-metallic magnetic separation[J]. Ceramics,2016(1):31-34. [8] 李小静,徐星佩,周岳远,等. CRIMM型高梯度磁选机在高岭土精制中的应用[J]. 矿产保护与利用,2005(6):25-27. LI X J,XU X P,ZHOU Y Y,et al. Application of the CRIMM cyclic high gradient magnetic separators(HGMS) to kaolin cleaning[J]. Conservation and Utilization of Mineral Resources,2005(6):25-27. [9] 袁致涛,高太,郭小飞,等. 永磁强磁预选设备的研制与应用[J]. 东北大学学报(自然科学版),2010,31(8):1188-1191. YUAN Z T,GAO T,GUO X F,et al. Development and application of high-intensity permanent magnetic separator for pre-concentration[J]. Journal of Northeastern University(Natural Science),2010,31(8):1188-1191. [10] TAKAYAMA T, KAMITANI A, TANAKA A. Numerical simulation of permanent magnet method: influence of experimental conditions on accuracy of jC-distribution[J]. Physic C: Superconductivity and its Applications,2010,470(20):1354-1357. [11] 卢东方,王毓华,何平波,等. 基于ANSYS的履带式永磁磁选机磁场模拟[J]. 中国有色金属学报,2014,24(8):2188-2195. LU D F,WANG Y H,HE P B,et al. Simulation of magnetic field on tracked permanent magnetic separator based on ANSYS[J]. The Chinese Journal of Nonferrous Metals,2014,24(8):2188-2195. [12] 张荣岭,郑艳明,崔浩,等. 条形永磁开路漏磁导磁场仿真计算方法[J]. 机电元件,2008,28(4):24-27. ZHANG R L,ZHENG Y M,CUI H,et al. Magnetic field simulation method for calculating leakage permeance of bar permanent magnet in open magnetic circuit[J]. Electromechanical Components,2008,28(4):24-27. [13] 郑霞裕,李茂林,崔瑞,等. 基于ANSYS的高梯度磁选机磁场特性影响因素分析[J]. 金属矿山,2013,42(7):139-143. ZHENG X Y,LI M L,CUI R,et al. Analysis of factors influencing magnetic field’s characteristics in HGMS based on ANSYS[J]. Metal Mine,2013,42(7):139-143. [14] 卢东方,王毓华,何平波,等. 旋流高梯度磁选机的原理及分选性能预测[J]. 中南大学学报(自然科学版),2014,45(1):1-8. LU D F,WANG Y H,H P B,et al. High-gradient magnetic separator with rotational flow field and predictions of its separation performance[J]. Journal of Central South University(Science and Technology),2014,45(1):1-8. [15] 魏群. 螺线管磁场分布特征[J]. 长春工业大学学报,2003,24(3):68-70. WEI Q. A study on the magnetic field distribution characteristics of coils[J]. Journal of Changchun University of Technology,2003,24(3):68-70. [16] 何桂春,黄开国,何平波. 高梯度磁选机铠装圆柱形螺线管磁系磁场分布的间接边界单元法(IBEM)研究[J]. 有色矿冶,2002,18(1):16-19. HE G C,HUANG K G,HE P B. Study on the distribution of the magnetic flux density of magnetic system of HGMS by indirect BEM[J]. Non-Ferrous Mining and Metallurgy,2002,18(1):16-19. [17] 何健全,许丽敏. 高梯度磁选机磁系结构设计校核及优化[J]. 机电工程技术,2009,38(11):72-73. HE J Q,XU L M. Magnet system design,checking and optimizing of high gradient magnetic separator[J]. Mechanical and Electrical Engineering Technology,2009,38(11):72-73.

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备注/Memo

备注/Memo:
收稿日期:2017-05-26 基金项目:国家重点基础研究发展计划“973”项目(2014cb643400)作者简介:陈志友,博士研究生. E-mail:496916449@qq.com
更新日期/Last Update: 2017-10-25