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The effects of pre-oxidation on the sintering and mechanical property of powder injection moulded SiC material

机译:预氧化对粉末注射成型SiC材料烧结及力学性能的影响

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摘要

Usually, injection moulded SiC green parts are debound in inert atmosphere or vacuum, which induces the residual carbon and increases forming cycle and production cost. In this paper, injection moulded SiC with A1_2O_3 and Y_2O_3 as sintering assistant was thermal debound in air and Ar, respectively. The paper investigates the effects of pre-oxidation during debinding stage on the sintering and mechanical property of SiC material. During sintering, the oxide SiO_2 is in favour of the shrinkage of debound samples at lower temperature. After sintering, the linear shrinkage of sintered samples with pre-oxidation is bigger than the sample without pre-oxidation. Test results by TEM and XRD indicate that SiO_2 disappear from the inside of the sintered samples. The loss of SiO_2 decreases the content of Al_2O_3, which affects the formation of YAG (Y_3Al_5O_12). Sintered Sic samples contain a-SiC phase and intergranular phase. There is no hetero phase between the boundaries of a-SiC phase and intergranular phase. The bending and compression strength values of sintered samples with pre-oxidation reach to 537 MPa and 2.89 GPa, respectively. These values approach the strength of sintered samples without pre-oxidation (594 MPa and 3.0 GPa).
机译:通常,注射成型的SiC生坯在惰性气氛或真空中脱胶,这会导致残留碳并增加成型周期和生产成本。在本文中,以A1_2O_3和Y_2O_3作为烧结助剂的注射成型SiC分别在空气和Ar中热脱胶。研究了脱脂阶段预氧化对SiC材料烧结和力学性能的影响。在烧结过程中,氧化物SiO_2有利于较低温度下离析样品的收缩。烧结后,预氧化样品的线性收缩率大于未预氧化样品的线性收缩率。 TEM和XRD的测试结果表明,SiO_2从烧结样品内部消失。 SiO_2的损失降低了Al_2O_3的含量,这影响了YAG(Y_3Al_5O_12)的形成。烧结的SiC样品含有a-SiC相和晶间相。在a-SiC相和晶间相的边界之间没有杂相。预氧化烧结样品的抗弯强度和抗压强度分别达到537 MPa和2.89 GPa。这些值接近没有预氧化的烧结样品的强度(594 MPa和3.0 GPa)。

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  • 来源
    《Materials & design》 |2012年第1期|p.231-235|共5页
  • 作者单位

    School of Materials Science and Engineering, Harbin Institute of Technology, Harbin 750001, China;

    School of Mechatronics Engineering, Harbin Institute of Technology, Harbin 150001, China;

    School of Materials Science and Engineering, Harbin Institute of Technology, Harbin 750001, China;

    School of Materials Science and Engineering, Harbin Institute of Technology, Harbin 750001, ChinaState Key Laboratory of Solidification Processing, Northwestern Polytechnical University, Xi'an 710072, PR China,Shaanxi Key Laboratory of Friction Welding Technologies, Northwestern Polytechnical University, Xi'an 710072, PR China;

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