Characterization of U-10Zr-2Sn-2Sb and U-10Zr-2Sn-2Sb-4Ln to assess Sn plus Sb as a mixed additive system to bind lanthanides

被引:20
作者
Benson, Michael T. [1 ]
Xie, Yi [2 ]
King, James A. [1 ]
Tolman, Kevin R. [1 ]
Mariani, Robert D. [1 ]
Charit, Indrajit [3 ]
Zhang, Jinsuo [2 ]
Short, Michael P. [4 ]
Choudhury, Samrat [3 ]
Khanal, Rabi [3 ]
Jerred, Nathan [3 ]
机构
[1] Idaho Natl Lab, POB 1625,MS 6188, Idaho Falls, ID 83415 USA
[2] Virginia Tech, 635 Prices Fork Rd, Blacksburg, VA 24061 USA
[3] Univ Idaho, 875 Perimeter Dr,MS 1011, Moscow, ID 83844 USA
[4] MIT, 77 Massachusetts Ave, Cambridge, MA 02139 USA
关键词
Metallic fuel; FCCI; Fuel additive; Lanthanides; METALLIC FUEL; CE; ANTIMONY; ALLOYS; HT-9; CLAD;
D O I
10.1016/j.jnucmat.2018.08.017
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Tin and antimony are being investigated as potential additives to metallic fuel to control fuel-cladding chemical interaction (FCCI). A primary cause of FCCI is lanthanide fission products moving to the fuel periphery and interacting with the cladding. This interaction can lead to wastage of the cladding and, given enough time or burn-up, eventually to a cladding breach. The current study involves a microstructural characterization of as-cast and annealed U-10Zr-2Sn-2Sb and U-10Zr-2Sn-2Sb-4Ln, where Ln = 53Nd-25Ce-16Pr-6La, all in wt %, as alloys which could prevent FCCI. Scanning electron microscopy (SEM) analysis and X-ray powder diffraction indicates the additive-Zr compound in U-10Zr-2Sn-2Sb is Zr-5(Sn,Sb)(3), while the additive-Ln compound being formed in U-10Zr-2Sn-2Sb-4Ln is Ln(5)(Sn,Sb)(4), with significantly more Sb than Sn (37 at. % versus 6 at. %, respectively). The bulk of the Sn, with a small amount of Sb, remained as Zr-5(Sn,Sb)(3) precipitates. The potential benefits of a mixed additive system, along with relative stabilities of the intermetallic compounds, are discussed. (C) 2018 Elsevier B.V. All rights reserved.
引用
收藏
页码:210 / 218
页数:9
相关论文
共 24 条
[1]  
Abulkhaev VD, 1999, RUSS J INORG CHEM+, V44, P264
[2]   Microstructural characterization of annealed U-12Zr-4Pd and U-12Zr-4Pd-5Ln: Investigating Pd as a metallic fuel additive [J].
Benson, Michael T. ;
He, Lingfeng ;
King, James A. ;
Mariani, Robert D. .
JOURNAL OF NUCLEAR MATERIALS, 2018, 502 :106-112
[3]   SEM characterization of two advanced fuel alloys: U-10Zr-4.3Sn and U-10Zr-4.3Sn-4.7Ln [J].
Benson, Michael T. ;
King, James A. ;
Mariani, Robert D. ;
Marshall, M. Craig .
JOURNAL OF NUCLEAR MATERIALS, 2017, 494 :334-341
[4]   DIE BILDUNG VON D88-PHASEN ZWISCHEN 4 A-METALLEN UND AL, GA, IN UND SB [J].
BOLLER, H ;
PARTHE, E .
MONATSHEFTE FUR CHEMIE, 1963, 94 (01) :225-&
[5]   Metallography and fuel cladding chemical interaction in fast flux test facility irradiated metallic U-10Zr MFF-3 and MFF-5 fuel pins [J].
Carmack, W. J. ;
Chichester, H. M. ;
Porter, D. L. ;
Wootan, D. W. .
JOURNAL OF NUCLEAR MATERIALS, 2016, 473 :167-177
[6]   A CORRECTION FOR POWDER DIFFRACTION PEAK ASYMMETRY DUE TO AXIAL DIVERGENCE [J].
FINGER, LW ;
COX, DE ;
JEPHCOAT, AP .
JOURNAL OF APPLIED CRYSTALLOGRAPHY, 1994, 27 :892-900
[7]   Scanning electron microscopy examination of a Fast Flux Test Facility irradiated U-10Zr fuel cross section clad with HT-9 [J].
Harp, Jason M. ;
Porter, Douglas L. ;
Miller, Brandon D. ;
Trowbridge, Tammy L. ;
Carmack, William J. .
JOURNAL OF NUCLEAR MATERIALS, 2017, 494 :227-239
[8]   SEPARATION AND RECOVERY OF URANIUM METAL FROM SPENT LIGHT WATER REACTOR FUEL VIA ELECTROLYTIC REDUCTION AND ELECTROREFINING [J].
Herrmann, S. D. ;
Li, S. X. .
NUCLEAR TECHNOLOGY, 2010, 171 (03) :247-265
[9]   Zr inclusions in actinide-Zr alloys: New data and ideas about how they form [J].
Janney, Dawn E. ;
O'Holleran, Thomas P. .
JOURNAL OF NUCLEAR MATERIALS, 2015, 460 :13-15
[10]  
Keiser D. D., 2006, TECH REP