Fabrication of High-Strength Zr-Based Composites by Spark Plasma Sintering

被引:0
|
作者
Tomoyuki Fujii
Masaki Suzuki
Ryuki Matsubara
Keiichiro Tohgo
Yoshinobu Shimamura
机构
[1] Shizuoka University,Department of Mechanical Engineering
关键词
biomaterials; composites; mechanical properties; powder metallurgy; spark plasma sintering;
D O I
暂无
中图分类号
学科分类号
摘要
Zirconium (Zr) partially stabilized zirconia (PSZ) composites were fabricated using the spark plasma sintering technique with the aim of producing medical implants with reduced metal-related artifacts in magnetic resonance imaging. Composites with compositions ranging from 100% Zr to 100% PSZ were fabricated, and they exhibited high mechanical performance. Optical microscopy and density measurements revealed that dense composites were successfully produced, irrespective of the PSZ content. Hardness and bending tests were performed to evaluate the influence of the addition of PSZ on the mechanical properties of the composites. The results showed that the hardness and bending strength increased with increasing PSZ content. The elastic modulus of the composites was higher than that predicted by the rule of mixtures, and this was due to the formation of Zr oxide around the Zr phase during sintering. It was concluded that the mechanical properties of the composites could be controlled within the range of those of monolithic Zr and monolithic PSZ, and that the use of PSZ was effective for improving the mechanical properties.
引用
收藏
页码:7883 / 7890
页数:7
相关论文
共 50 条
  • [1] Fabrication of High-Strength Zr-Based Composites by Spark Plasma Sintering
    Fujii, Tomoyuki
    Suzuki, Masaki
    Matsubara, Ryuki
    Tohgo, Keiichiro
    Shimamura, Yoshinobu
    JOURNAL OF MATERIALS ENGINEERING AND PERFORMANCE, 2020, 29 (12) : 7883 - 7890
  • [2] Spark Plasma Sintering of a Zr-Based Metallic Glass
    Perriere, Loic
    Minh Thanh Thai
    Tusseau-Nenez, Sandrine
    Bletry, Marc
    Champion, Yannick
    ADVANCED ENGINEERING MATERIALS, 2011, 13 (07) : 581 - 586
  • [3] Spark plasma sintering of high-strength lightweight ceramics
    Chuvil'deev, V. N.
    Boldin, M. S.
    Popov, A. A.
    Nokhrin, A. V.
    5TH INTERNATIONAL SCIENTIFIC WORKSHOP ON ADVANCED TECHNOLOGIES OF MATERIALS FIELD-ASSISTED CONSOLIDATION, 2017, 218
  • [4] Spark Plasma Sintering of high-strength ultrafine-grained tungsten carbide
    Nokhrin, A. V.
    Chuvil'deev, V. N.
    Blagoveshchenskiy, Yu V.
    Boldin, M. S.
    Sakharov, N. V.
    Isaeva, N. V.
    Popov, A. A.
    Lantcev, E. A.
    Belkin, O. A.
    Smirnova, E. S.
    5TH INTERNATIONAL SCIENTIFIC WORKSHOP ON ADVANCED TECHNOLOGIES OF MATERIALS FIELD-ASSISTED CONSOLIDATION, 2017, 218
  • [5] Fabrication of high-strength transparent MgAl205 spinel polycrystals by optimizing spark-plasma-sintering conditions
    Morita K.
    Kim B.-N.
    Hiraga K.
    Yoshida H.
    Journal of Materials Research, 2009, 24 (9) : 2863 - 2872
  • [6] Preparation of High-Strength Ti3AlC2 by Spark Plasma Sintering
    Wang, Wenjuan
    Li, Cuiwei
    Zhai, Hongxiang
    Wang, Changan
    INTERNATIONAL JOURNAL OF APPLIED CERAMIC TECHNOLOGY, 2015, 12 : E126 - E131
  • [7] Chemical surface modification of high-strength porous Ti compacts by spark plasma sintering
    Sakamoto, Y
    Asaoka, K
    Kon, M
    Matsubara, T
    Yoshida, K
    BIO-MEDICAL MATERIALS AND ENGINEERING, 2006, 16 (02) : 83 - 91
  • [8] Bimodally grained high-strength Fe fabricated by mechanical alloying and spark plasma sintering
    Sirinivasarao, B.
    Oh-ishi, K.
    Ohkubo, T.
    Hono, K.
    ACTA MATERIALIA, 2009, 57 (11) : 3277 - 3286
  • [9] Synthesis of high-strength bimodally grained iron by mechanical alloying and spark plasma sintering
    Srinivasarao, B.
    Oh-ishi, K.
    Ohkubo, T.
    Mukai, T.
    Hono, K.
    SCRIPTA MATERIALIA, 2008, 58 (09) : 759 - 762
  • [10] Fabrication of high strength and plasticity of Zn-Mg composites with core-shell structure by spark plasma sintering
    Cui, Zeqin
    Luo, Mengda
    Zhang, Yakai
    Gong, Dianqing
    Wang, Wenxian
    Wang, Jianzhong
    MATERIALS LETTERS, 2020, 279