The microstructural and mechanical behavior of in-situ synthesized ZrB2-ZrC and ZrB2-SiC-ZrC composites: A comparative study

被引:8
|
作者
Jyoti [1 ]
Tiwari, Manish [2 ]
Singh, Aman [1 ]
Singh, Vinay Kumar [1 ]
机构
[1] Indian Inst Technol BHU, Dept Ceram Engn, Varanasi 221005, Uttar Pradesh, India
[2] Indian Inst Technol BHU, Dept Met Engn, Varanasi 221005, Uttar Pradesh, India
关键词
ZrB2 based composite; Reduction process; Fabrication; Micrographs; Mechanical properties; ZIRCONIUM; REDUCTION; DENSIFICATION; CARBIDE; NANOCOMPOSITE; PROTECTION; POWDER; ZRO2;
D O I
10.1016/j.vacuum.2023.112199
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
In the present investigation, the ZrB2-ZrC and ZrB2-SiC-ZrC based composites were fabricated via an in-situ reduction mechanism using ZrO2, B4C, Si, and graphite fine powder at 1900 degrees C in an argon atmosphere. The boro/carbothermal reduction produced nano-sized ZrC grains with ZrB2 particles, whereas the incorporation of Si content produced nano-sized homogeneous distributed SiC grains with ZrB2-ZrC particles. In the ZrB2-based composite densification, microstructure, mechanical, and chemical state identification of elements were inves-tigated. The densification of the samples was enhanced with the formation of ZrC and SiC content, which was correlated with the micrographs and mechanical properties of the samples. The chemical state identification confirms the trace amount of intermediate zirconium oxycarbide in the ZrB2-based composite. Compared to binary ZrB2-ZrC composite, ZrB2-SiC-ZrC composite has finer microstructure and higher densification. The strength of the ZrB2-ZrC and ZrB2-SiC-ZrC composite was decreased by 458 MPa and 406 MPa, respectively. Similarly, the indentation hardness of the samples was increased by 14.2 GPa-15.3 GPa, and fracture toughness was 5.5 +/- 0.5 MPa m1/2 to 6.15 +/- 0.4 MPa m1/2.
引用
收藏
页数:11
相关论文
共 50 条
  • [1] Reactive synthesis and mechanical properties of ZrB2-SiC-ZrC composites
    Wu, Wen-Wen
    Zhang, Guo-Jun
    Kan, Yan-Mei
    Wang, Pei-Ling
    HIGH-PERFORMANCE CERAMICS V, PTS 1 AND 2, 2008, 368-372 : 1758 - 1760
  • [2] Synergetic roles of ZrC and SiC in ternary ZrB2-SiC-ZrC ceramics
    Liu, Hu-Lin
    Zhang, Guo-Jun
    Liu, Ji-Xuan
    Wu, Houzheng
    JOURNAL OF THE EUROPEAN CERAMIC SOCIETY, 2015, 35 (16) : 4389 - 4397
  • [3] The oxidation behaviors of a ZrB2-SiC-ZrC ceramic
    Wang, Zhi
    Wu, Zhanjun
    Shi, Guodong
    SOLID STATE SCIENCES, 2011, 13 (03) : 534 - 538
  • [4] Contour maps of mechanical properties in ternary ZrB2-SiC-ZrC ceramic system
    Liu, Hu-Lin
    Liu, Ji-Xuan
    Liu, Hai-Tao
    Zhang, Guo-Jun
    SCRIPTA MATERIALIA, 2015, 107 : 140 - 144
  • [5] ZrB2-SiC and ZrB2-ZrC Ceramics with High Secondary Phase Content
    Rosenberger, Andrew
    Stanciu, Lia
    Callegari, Bruna
    INTERNATIONAL JOURNAL OF APPLIED CERAMIC TECHNOLOGY, 2015, 12 : E44 - E52
  • [6] Synthesis of In Situ ZrB2-SiC-ZrC Coating on ZrC-SiC Substrate by Reactive Plasma Spraying
    Ma, Bao-Xia
    Wang, Yang
    Zhao, Si-Cong
    Wu, Hao-Nan
    Qiao, Yang
    MATERIALS, 2022, 15 (06)
  • [7] Processing and characterization of Cf/ZrB2-SiC-ZrC composites produced at moderate pressure and temperature
    Kannan, Rajaguru
    Rangaraj, Lingappa
    CERAMICS INTERNATIONAL, 2017, 43 (02) : 2625 - 2631
  • [8] ZrB2-SiC-ZrC coating on ZrC ceramics deposited by plasma spraying
    Ma, Baoxia
    Li, Jinyou
    RESULTS IN PHYSICS, 2019, 15
  • [9] The thermal shock resistance of the ZrB2-SiC-ZrC ceramic
    Wang Zhi
    Qu Qiang
    Wu Zhanjun
    Shi Guodong
    MATERIALS & DESIGN, 2011, 32 (06): : 3499 - 3503
  • [10] Fracture toughness and hardness investigation in ZrB2-SiC-ZrC composite
    Rezapour, Arsalan
    Balak, Zohre
    MATERIALS CHEMISTRY AND PHYSICS, 2020, 241