Particle size dependent sinterability and magnetic properties of recycled HDDR Nd-Fe-B powders consolidated with spark plasma sintering

被引:18
作者
Ikram, Awais [1 ,2 ]
Mehmood, Farhan [1 ,2 ]
Sheridan, Richard Stuart [3 ]
Awais, Muhammad [3 ]
Walton, Allan [3 ]
Eldosouky, Anas [2 ,4 ]
Sturm, Saso [1 ,2 ]
Kobe, Spomenka [1 ,2 ]
Rozman, Kristina Zuzek [1 ,2 ]
机构
[1] Jozef Stefan Inst, Dept Nanostruct Mat, Jamova 39, SI-1000 Ljubljana, Slovenia
[2] Jozef Stefan Int Postgrad Sch, Jamova 39, SI-1000 Ljubljana, Slovenia
[3] Univ Birmingham, Sch Met & Mat, Birmingham B15 2TT, W Midlands, England
[4] Magneti Ljubljana Dd, Stegne 37, SI-1000 Ljubljana, Slovenia
关键词
Reprocessing end-of life scrap; Rare earth permanent magnets; HDDR; Nd2Fe14B; Recycling; Spark plasma sintering; PERMANENT-MAGNETS; RICH PHASE; COERCIVITY ENHANCEMENT; ANISOTROPIC POWDER; OXYGEN-CONTENT; PR-FE; MICROSTRUCTURE; DIFFUSION; HYDROGEN; MECHANISM;
D O I
10.1016/j.jre.2019.02.010
中图分类号
O69 [应用化学];
学科分类号
081704 ;
摘要
The dependence of the magnetic properties on the particle size of recycled HDDR Nd-Fe-B powders was investigated, with the aim to assess the reprocessing potential of the end-of-life scrap magnets via spark plasma sintering (SPS). The as received recycled HDDR powder has coercivity (H-ci) = 830 kA/m and particles in the range from 30 to 700 mm (average 220 mu m). After burr milling, the average particle size is reduced to 120 mu m and subsequently the H-ci of fine (milled) powder was 595 kA/m. Spark plasma sintering was exploited to consolidate the nanograined HDDR powders and limit the abnormal grain coarsening. The optimal SPS-ing of coarse HDDR powder at 750 degrees C for 1 min produces fully dense magnets with H-ci = 950 +/- 100 kA/m which further increases to 1200 kA/m via thermal treatment at 750 degrees C for 15 min. The burr milled fine HDDR powder under similar SPS conditions and after thermal treatment results in H-ci = 940 kA/m. The fine powder is further sieved down from 630 to less than 50 mu m mesh size, to evaluate the possible reduction in H-ci in relation to the particle size. The gain in oxygen content doubles for <50 mu m sized particles as compared with coarser fractions (> 200 mu m). The XRD analysis for fractionated powder indicates an increase in Nd2O3 phase peaks in the finer (<100 mu m) fractions. Similarly, the H-ci reduces from 820 kA/m in the coarse particles (>200 mu m) to 460 kA/m in the fine sized particles (<100 mu m). SPS was done on each HDDR powder fraction under the optimal conditions to measure the variation in H-Ci and density. The H-ci of SPS-ed coarse fraction (>200 mu m) is higher than 930 kA/m and it falls abruptly to just 70 kA/m for the fine sized particles (<100 mu m). The thermal treatment further improves the H-ci to >1000 kA/m only up to 100 mm sized fractions with >90% sintered density. The full densification (>99%) is observed only in the coarse fractions. The loss of coercivity and lack of sinterability in the fine sized particles (<100 mm) are attributed to a very high oxygen content. This implies that during recycling, if good magnetic properties are to be maintained or even increase the HDDR powder particles can be sized down only up to >= 100 mu m. (C) 2019 Chinese Society of Rare Earths. Published by Elsevier B.V.
引用
收藏
页码:90 / 99
页数:10
相关论文
共 51 条
[1]   Rare Earths and the Balance Problem [J].
Binnemans K. ;
Jones P.T. .
Journal of Sustainable Metallurgy, 2015, 1 (01) :29-38
[2]  
Burkhardt C., 2017, Powder Inject. Mould. Int, V11, P75
[3]   Influence of oxygen content on grain growth in Pr-Fe-B/Nd-Fe-B sintered magnets [J].
Corfield, M. R. ;
Harris, I. R. ;
Williams, A. J. .
JOURNAL OF ALLOYS AND COMPOUNDS, 2008, 463 (1-2) :182-190
[4]   PR-FE AND ND-FE-BASED MATERIALS - A NEW CLASS OF HIGH-PERFORMANCE PERMANENT-MAGNETS [J].
CROAT, JJ ;
HERBST, JF ;
LEE, RW ;
PINKERTON, FE .
JOURNAL OF APPLIED PHYSICS, 1984, 55 (06) :2078-2082
[5]   Anisotropic Nd-Fe-B nanocrystalline magnets processed by spark plasma sintering and in situ hot pressing of hydrogenation-decomposition-desorption-recombination powder [J].
Gopalan, R. ;
Sepehri-Amin, H. ;
Suresh, K. ;
Ohkubo, T. ;
Hono, K. ;
Nishiuchi, T. ;
Nozawa, N. ;
Hirosawa, S. .
SCRIPTA MATERIALIA, 2009, 61 (10) :978-981
[6]   Ultra-fine grained Nd-Fe-B by high pressure reactive milling and desorption [J].
Gueth, Konrad ;
Lyubina, Julia ;
Gebel, Bernhard ;
Schultz, Ludwig ;
Gutfleisch, Oliver .
JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2012, 324 (18) :2731-2735
[7]   Recycling Used Nd-Fe-B Sintered Magnets via a Hydrogen-Based Route to Produce Anisotropic, Resin Bonded Magnets [J].
Gutfleisch, Oliver ;
Gueth, Konrad ;
Woodcock, Thomas George ;
Schultz, Ludwig .
ADVANCED ENERGY MATERIALS, 2013, 3 (02) :151-155
[8]   Magnetic Materials and Devices for the 21st Century: Stronger, Lighter, and More Energy Efficient [J].
Gutfleisch, Oliver ;
Willard, Matthew A. ;
Bruck, Ekkes ;
Chen, Christina H. ;
Sankar, S. G. ;
Liu, J. Ping .
ADVANCED MATERIALS, 2011, 23 (07) :821-842
[9]   Strategy for high-coercivity Nd-Fe-B magnets [J].
Hono, K. ;
Sepehri-Amin, H. .
SCRIPTA MATERIALIA, 2012, 67 (06) :530-535
[10]   Impact of different Nd-rich crystal-phases on the coercivity of Nd-Fe-B grain ensembles [J].
Hrkac, G. ;
Woodcock, T. G. ;
Butler, K. T. ;
Saharan, L. ;
Bryan, M. T. ;
Schrefl, T. ;
Gutfleisch, O. .
SCRIPTA MATERIALIA, 2014, 70 :35-38