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采用机械合金化-放电等离子烧结技术制备的NiCoCrAlTi高熵合金的微观结构与性能

Microstructure and Properties of NiCoCrAlTi High Entropy Alloy Prepared Using MA-SPS Technique.

作者信息

Chen Zhipei, Ren Xiaona, Wang Peng, Hu Jiangxiong, Ge Changchun

机构信息

Institute of Powder Metallurgy and Advanced Ceramics, University of Science & Technology Beijing, Beijing 100083, China.

China Machinery Institute of Advanced Materials (Zhengzhou) Co., Ltd., Zhengzhou 450001, China.

出版信息

Materials (Basel). 2023 Mar 3;16(5):2082. doi: 10.3390/ma16052082.

Abstract

In this study, NiCoCrAlTiMoWNbTa high entropy alloy (HEA) was prepared using mechanical alloying (MA) and spark plasma sintering (SPS) based on the unique design concept of HEAs and third-generation powder superalloys. The HEA phase formation rules of the alloy system were predicted but need to be verified empirically. The microstructure and phase structure of the HEA powder were investigated at different milling times and speeds, with different process control agents, and with an HEA block sintered at different temperatures. The milling time and speed do not affect the alloying process of the powder and increasing the milling speed reduces the powder particle size. After 50 h of milling with ethanol as PCA, the powder has a dual-phase FCC+BCC structure, and stearic acid as PCA inhibits the powder alloying. When the SPS temperature reaches 950 °C, the HEA transitions from a dual-phase to a single FCC phase structure and, with increasing temperature, the mechanical properties of the alloy gradually improve. When the temperature reaches 1150 °C, the HEA has a density of 7.92 g cm, a relative density of 98.7%, and a hardness of 1050 HV. The fracture mechanism is one with a typical cleavage, a brittle fracture with a maximum compressive strength of 2363 MPa and no yield point.

摘要

在本研究中,基于高熵合金(HEA)和第三代粉末高温合金的独特设计理念,采用机械合金化(MA)和放电等离子烧结(SPS)制备了NiCoCrAlTiMoWNbTa高熵合金。预测了该合金体系的HEA相形成规律,但需要通过实验进行验证。研究了在不同球磨时间和速度、使用不同过程控制剂以及在不同温度下烧结的HEA块体情况下,HEA粉末的微观结构和相结构。球磨时间和速度不影响粉末的合金化过程,提高球磨速度会减小粉末粒径。以乙醇作为过程控制剂球磨50 h后,粉末具有FCC+BCC双相结构,而以硬脂酸作为过程控制剂会抑制粉末合金化。当SPS温度达到950℃时,HEA从双相转变为单一的FCC相结构,并且随着温度升高,合金的力学性能逐渐提高。当温度达到1150℃时,HEA的密度为7.92 g/cm³,相对密度为98.7%,硬度为1050 HV。断裂机制为典型的解理,是一种脆性断裂,最大抗压强度为2363 MPa且无屈服点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/410d/10003886/122d877594ee/materials-16-02082-g001.jpg

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