首页|期刊导航|东华大学学报(英文版)|低温反应放电等离子烧结法原位合成碳化硅增韧中熵(Zr1/3Hf1/3W1/3)C陶瓷

低温反应放电等离子烧结法原位合成碳化硅增韧中熵(Zr1/3Hf1/3W1/3)C陶瓷OA

Medium-Entropy(Zr1/3Hf1/3W1/3)C Ceramic Toughened by In-Situ-Formed Silicon Carbide via Low-Temperature Reactive Spark Plasma Sintering

中文摘要英文摘要

中熵过渡金属碳化物陶瓷及其复合材料是极端环境用重要耐高温材料,但其面临着致密化困难与断裂韧性低的挑战.针对这一问题,采用碳热还原法合成了名义成分为(Zr1/3Hf1/3W1/3)C(MEC)的中熵陶瓷粉体,然后添加 Si 并利用反应放电等离子烧结(RSPS)技术制备了 MEC 基复相陶瓷.研究发现,未添加Si 时,MEC 陶瓷需在1 900℃烧结才能形成单相固溶体,此时其相对密度和平均晶粒尺寸分别为96.7%和(3.8±1.3)μm.添加5%(质量分数)Si 后,在1 700℃烧结,可获得相对密度为98.8%的MEC 基复相陶瓷,其由MEC 固溶体相和原位反应生成的SiC 第二相构成.MEC 基体相的平均晶粒尺寸仅为(1.4±0.3)μm.与单相MEC 陶瓷相比,添加Si 制备的MEC 基复相陶瓷的断裂韧性提高了24.8%,达(3.42±0.24)MPa·m1/2.分析认为,低熔点 Si 可在烧结过程中形成液相以促进致密化.同时,Si 与碳化物反应会导致后者内部形成碳空位,可加速原子扩散,促进MEC 固溶体相的形成.另外,原位反应生成的SiC 相不仅会钉扎基体相的晶界,阻碍其生长,还能引起裂纹偏转,提高材料的断裂韧性.该研究结果可为极端环境用新型中熵碳化物基陶瓷的设计与制备提供参考.

Medium-entropy transition metal carbide ceramics and their composites are important materials for extreme environments.However,they face challenges in densification difficulties and low fracture toughness.To address this issue,a medium-entropy ceramic powder with a nominal composition of(Zr1/3Hf1/3W1/3)C(MEC)was synthesized by carbothermal reduction.Then,silicon(Si)was added,and the reactive spark plasma sintering(RSPS)technology was used to prepare MEC-based composite ceramics.The results show that MEC ceramics without Si addition can only form a single-phase solid solution when sintered at 1 900℃,with a relative density of 96.7%and an average grain size of(3.8±1.3)μm.By adding 5%Si by mass,the MEC-based composite ceramic with a relative density of 98.8%can be obtained by sintering at a relatively low temperature of 1 700℃.It is composed of an MEC solid solution phase and an in-situ-formed silicon carbide(SiC)secondary phase,and the average grain size of the MEC matrix phase is only(1.4±0.3)μm.Compared with the single-phase MEC ceramic,the fracture toughness of the MEC-based composite ceramic prepared by adding Si increases by 24.8%to(3.42±0.24)MPa·m1/2.It is considered that Si,with a low melting point,can form a liquid phase during sintering,promoting densification.Additionally,the reaction between Si and carbide results in the formation of carbon vacancies in the latter,which can accelerate atomic diffusion and promote the formation of the MEC solid solution phase.In addition,the in-situ-formed SiC not only pins the grain boundaries of the matrix phase to hinder its growth,but also causes crack deflection to improve the fracture toughness of materials.The research results can provide references for the design and preparation of novel medium-entropy carbide-based ceramics for extreme environments.

李梦飞;彭湃;刘吉轩;秦渊;程伟强;张国军

东华大学 先进纤维材料全国重点实验室 材料科学与工程学院,上海 201620东华大学 先进纤维材料全国重点实验室 材料科学与工程学院,上海 201620东华大学 先进纤维材料全国重点实验室 材料科学与工程学院,上海 201620东华大学 先进纤维材料全国重点实验室 材料科学与工程学院,上海 201620东华大学 先进纤维材料全国重点实验室 材料科学与工程学院,上海 201620东华大学 先进纤维材料全国重点实验室 材料科学与工程学院,上海 201620

通用工业技术

中熵碳化物碳热还原反应反应烧结碳化硅增韧

medium-entropy carbidecarbothermal reductionreactive sinteringsilicon carbidetoughening

《东华大学学报(英文版)》 2026 (2)

51-58,8

National Natural Science Foundation of China(Nos.52371023 and 52032001)

10.19884/j.1672-5220.202507001

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