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2O 3/SiC w/TiC n nanocomposite materials]]>

机译:<![CDATA [CDATA [高温机械性能和MICROUNTS的eAL 2 O 3 / SIC W / ICT N 纳米复合材料]]]>

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AbstractThe addition of nanoparticles can greatly improve the mechanical properties of ceramic materials at room temperature, but the research on the toughening and strengthening effect of nanoparticles at high temperature is less reported. In this paper, the evolution law and evolution mechanisms of the mechanical properties including Vickers hardness, fracture toughness and flexural strength as well as elastic modulus of TiC nanoparticles dispersed Al2O3/SiCwceramic materials (Al2O3/SiCw/TiCn) at high temperature (up to 1200?°C) were meticulously investigated compared with those of Al2O3/SiCw. The results showed that the Vickers hardness and fracture toughness of Al2O3/SiCw/TiCnwere higher than those of Al2O3/SiCwceramic materials at both room and elevated temperature. Although the flexural strength of the Al2O3/SiCwceramic materials was improved by the addition of nanoparticles at room temperature, the intergranular fracture tended to occur along the refined matrix grains at high temperature, resulting in lower high temperature flexural strength of Al2O3/SiCw/TiCncomposite. The Vickers hardness of both the two composites decreased with increasing temperature (20–1000?°C). At 1000?°C, the hot hardness of the composite with TiC nanoparticles addition was still maintained 68.4% of hardness at room temperature. The fracture toughness of the two composites decreased rapidly from 900?°C above but increased to a peak at 1200?°C. The addition of TiC nanoparticles played a positive role for improving the hot hardness and high temperature fracture toughness, but was not conducive to the high temperature flexural strength.Highlights?The TiCnparticles effect on high temperature mechanical properties were studied.?TiCnparticles improved the hardness and fracture toughness at high temperature.?TiCnparticles addition was not conducive to high temperature flexural strength.?The larger grains tended to be transgranular fracture compared to refined grains.]]>
机译:<![CDATA [ 抽象 添加纳米颗粒可以大大提高陶瓷材料在室温下的机械性能,但对增韧的研究报道,纳米颗粒在高温下的强化效果较少。在本文中,施工性能的演化法和演化机制,包括维氏硬度,断裂韧性和弯曲强度以及Tic纳米颗粒的弹性模量分散Al 2 O 3 / SIC W 陶瓷材料(AL 2 O 3 / SIC W / TIC N ”中的“> N ”)> 2 O 3> 3 / SIC W 。结果表明,AL 2 O 3 / SIC < CE:INF LOC =“POST”> W / TIC N 高于AL 2> 2 O 3 / SIC W 陶瓷材料在两个房间和升高的温度。虽然AL 2 O 3 / SIC W 通过在室温下加入纳米颗粒来改善陶瓷材料,介于高温下沿精制基质晶粒发生晶间骨折,导致Al 2 O 3 / SIC W / TIC N 复合。两种复合材料的维氏硬度随温度的增加而降低(20-1000Ω°C)。在1000℃下,用TiC纳米粒子的复合材料的热硬度在室温下保持68.4%的硬度。两种复合材料的断裂韧性从上面的900℃迅速下降,但在1200℃下增加至峰。 TiC纳米粒子的添加起到改善热硬度和高温裂缝韧性的积极作用,但不利于高温弯曲强度。 亮点 < CE:标签>? TIC N 粒子效果高温效果研究了机械性能。 TIC N 颗粒在高温下改善硬度和断裂韧性。 tic N 颗粒添加不利于高温弯曲强度。 与精制谷物相比,较大的谷物倾向于变窄性骨折。 ]]>

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