熔融铬硅基合金与陶瓷和高熵氧化物的反应

IF 2.1 3区 材料科学 Q2 METALLURGY & METALLURGICAL ENGINEERING
Lucas Pelchen, Manuel Schenker, Maren Lepple, Anke Silvia Ulrich
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引用次数: 0

摘要

与其他高温材料相比,铬硅基(Cr-Si-base)合金具有更高的热稳定性和化学稳定性,是未来燃气轮机和其他在苛刻条件下工作的高温应用领域的理想材料。要实现铬硅基合金的近净成形铸造,合金熔体与陶瓷坩埚和模具之间必须具有相容性。此外,隔热涂层(TBC)和合金之间的界面存在金属-陶瓷接触,金属熔体可能会在涂层失效和过热的情况下发挥作用。在本研究中,熔融 Cr92Si8(单位:%)合金与常用于铸造模具或坩埚的陶瓷粉末(如 ZrSiO4、Al2O3、3YSZ)接触,以研究液态金属的腐蚀、相互扩散和稳定性。此外,还研究了高熵氧化物(Sm0.2Gd0.2Dy0.2Er0.2Yb0.2)2Zr2O7 (HEO),这是一种未来潜在的 TBC 材料。在使用电弧炉熔化之前,将所研究的陶瓷粉末与粉碎的 Cr92Si8 混合并压制成合金陶瓷对,以最大限度地增加熔融金属与陶瓷之间的接触面积。为了进行微观结构研究和相分析,使用配备了能量色散 X 射线光谱仪(EDS)和 X 射线衍射仪(XRD)的扫描电子显微镜(SEM)对材料进行了评估。发现广泛使用的模具材料 ZrSiO4 和涂层 BN 发生了分解,同时检测到 SiO2 和 CoAl2O4 与熔体的反应产物。Al2O3、3YSZ 和 HEO 没有出现分解或被熔体腐蚀的现象。因此,Al2O3、3YSZ 和 HEO 被认为是很有前途的铬硅基合金坩埚、模具和 TBC 材料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Reaction of a Molten Cr-Si-Base Alloy with Ceramics and a High Entropy Oxide

Reaction of a Molten Cr-Si-Base Alloy with Ceramics and a High Entropy Oxide

Due to their higher thermal and chemical stability than other high-temperature materials, chromium-silicon-base (Cr-Si-base) alloys are promising materials for future gas turbines and other high-temperature applications operating under harsh conditions. To enable near-net-shape casting of Cr-Si-base alloys, a compatibility of the alloy melt with the ceramic crucibles and molds is necessary. Additionally, a metal-ceramic contact exists at the interface between thermal barrier coating (TBC) and alloy, where metallic may melts play a role in the case of coating failure and overheating. In this study, molten Cr92Si8 (in at. %) alloy is brought into contact with powders of ceramics commonly used for casting molds or crucibles (e.g. ZrSiO4, Al2O3, 3YSZ), to investigate liquid metal corrosion, interdiffusion, and stabilities. Additionally, the high entropy oxide (Sm0.2Gd0.2Dy0.2Er0.2Yb0.2)2Zr2O7 (HEO), a potential future TBC material, is investigated. Before melting using an electric arc furnace, the powders of the investigated ceramics were mixed with pulverized Cr92Si8 and pressed into alloy-ceramic pairs, to maximize the contact area between molten metal and ceramic. For microstructural investigations and phase analysis, the materials were assessed using scanning electron microscopy (SEM) equipped with energy-dispersive X-ray spectroscopy (EDS), and X-ray diffraction (XRD). The widely used mold material ZrSiO4 and the coating BN were found to decompose, while reaction products of SiO2 and CoAl2O4 with the melt were detected. Al2O3, 3YSZ, and the HEO did not show decomposition or corrosion by the melt. Al2O3, 3YSZ, and the HEO are therefore considered as promising crucible, mold, and TBC materials for Cr-Si-base alloys.

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来源期刊
Oxidation of Metals
Oxidation of Metals 工程技术-冶金工程
CiteScore
5.10
自引率
9.10%
发文量
47
审稿时长
2.2 months
期刊介绍: Oxidation of Metals is the premier source for the rapid dissemination of current research on all aspects of the science of gas-solid reactions at temperatures greater than about 400˚C, with primary focus on the high-temperature corrosion of bulk and coated systems. This authoritative bi-monthly publishes original scientific papers on kinetics, mechanisms, studies of scales from structural and morphological viewpoints, transport properties in scales, phase-boundary reactions, and much more. Articles may discuss both theoretical and experimental work related to gas-solid reactions at the surface or near-surface of a material exposed to elevated temperatures, including reactions with oxygen, nitrogen, sulfur, carbon and halogens. In addition, Oxidation of Metals publishes the results of frontier research concerned with deposit-induced attack. Review papers and short technical notes are encouraged.
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