Enhanced density and fine W particles of W-7Ni-3Fe alloys prepared by binder jetting additive manufacturing with a two-step sintering strategy

IF 4.2 2区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Yuhua Heng, Yiwei Mao, Kunhao Feng, Jianan Zheng, Yingmi Xie, Qingsong Wei
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引用次数: 0

Abstract

Binder jetting (BJ) additive manufacturing has emerged as a potential technique for the fabrication of complex tungsten heavy alloy (WHA) parts due to high efficiency and low cost. However, due to the low green density, high sintering temperature or long holding time is required to achieve densification of the BJ WHA samples. This could also lead to excessive growth of W particles, which compromises their mechanical properties. To address these issues, a two-step sintering strategy was proposed in this study to enhance sintering densification and refine W particles. The densification, microstructure evolution, and tensile properties of BJ W-7Ni-3Fe alloys manufactured by two-step sintering (TSS) were investigated and compared with those fabricated by one-step sintering (OSS). Notably, at a sintering temperature of 1520 °C, the TSS samples exhibited a 5.0 % enhancement in density and a 15.9 % reduction in W particle sizes in comparison to the OSS samples. Meanwhile, the mechanical performance of the TSS samples was significantly improved, with increases of 62.8 % in hardness, 7.6 % in yield strength, 14.2 % in ultimate tensile strength, and 32.7 % in elongation, respectively. Furthermore, the relationship between mechanical performance, porosity, and microstructural parameters was analyzed in detail. Linear relationship between microstructural parameters and tensile properties was well fitted with porosity below 10 %. The as-reported TSS strategy offers great potential in obtaining BJ tungsten-based alloys and other refractory metals with high density and fine grains.
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来源期刊
CiteScore
7.00
自引率
13.90%
发文量
236
审稿时长
35 days
期刊介绍: The International Journal of Refractory Metals and Hard Materials (IJRMHM) publishes original research articles concerned with all aspects of refractory metals and hard materials. Refractory metals are defined as metals with melting points higher than 1800 °C. These are tungsten, molybdenum, chromium, tantalum, niobium, hafnium, and rhenium, as well as many compounds and alloys based thereupon. Hard materials that are included in the scope of this journal are defined as materials with hardness values higher than 1000 kg/mm2, primarily intended for applications as manufacturing tools or wear resistant components in mechanical systems. Thus they encompass carbides, nitrides and borides of metals, and related compounds. A special focus of this journal is put on the family of hardmetals, which is also known as cemented tungsten carbide, and cermets which are based on titanium carbide and carbonitrides with or without a metal binder. Ceramics and superhard materials including diamond and cubic boron nitride may also be accepted provided the subject material is presented as hard materials as defined above.
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