High-temperature stability and thermal expansion behavior of equi-atomic refractory multi-principal element alloys based on MoNbTi system for Gen IV reactor applications

IF 4.6 2区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY International Journal of Refractory Metals & Hard Materials Pub Date : 2025-01-18 DOI:10.1016/j.ijrmhm.2025.107064
Anilas Karimpilakkal , Joseph W. Newkirk , Jason L. Schulthess , Frank Liou , Visharad Jalan , Haiming Wen
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Abstract

The present study investigates the thermal stability and thermal expansion behavior of seven equi-atomic refractory multi-principal element alloys (MPEAs) based on the MoNbTi ternary system composed of low neutron absorption cross section elements. Through an integrated approach utilizing in-situ high-temperature X-ray diffraction (HT-XRD) in conjunction with differential scanning calorimetry (DSC), dilatometry and ageing heat treatment, the thermal stability of the MPEAs was comprehensively analyzed. In-situ HT-XRD experiment confirmed the stability of the room temperature phases up to 1000 °C with no peaks observed corresponding to additional phases in the HT-XRD patterns at 500, 800 and 1100 °C. DSC thermograms showed the absence of peaks up to 1000 °C, while peaks and valleys corresponding to exothermic and endothermic events were observed above 1000 °C. Coefficient of thermal expansion (CTE) derived from second order polynomial fitting of linear thermal expansion data from the dilatometry experiment showed linear increment up to 1000 °C for all the alloys except those containing Zr. The Cr containing alloys exhibited notably higher CTE values, particularly the Al containing alloy exhibited the highest value. Ageing heat treatment at 800 and 1000 °C for 96 h and subsequent microstructural analysis revealed significant precipitation of secondary phases in MoNbTiZr, MoNbTiZrV and MoNbTiCrAl. A substantial increase in hardness was observed in MoNbTiZr and MoNbTiCrAl due to secondary phase precipitation, while the other alloys maintained hardness values comparable to their as-cast and homogenized states.
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基于MoNbTi体系的四代反应堆等原子难熔多主元素合金高温稳定性及热膨胀行为
以低中子吸收截面元素组成的MoNbTi三元系为基体,研究了七种等原子难熔多主元素合金(mpea)的热稳定性和热膨胀行为。通过原位高温x射线衍射(HT-XRD)、差示扫描量热法(DSC)、膨胀法和时效热处理等综合方法,对mpea的热稳定性进行了综合分析。原位HT-XRD实验证实了室温相在1000℃以下的稳定性,在500、800和1100℃时没有观察到额外相对应的峰。DSC热像图显示,在1000°C以下没有峰,而在1000°C以上观察到放热和吸热事件对应的峰和谷。用二阶多项式拟合得到的热膨胀系数(CTE)表明,除含Zr的合金外,所有合金的热膨胀系数在1000℃以下均呈线性增加。含Cr合金具有较高的CTE值,其中含Al合金的CTE值最高。在800和1000°C下时效热处理96 h,随后的显微组织分析表明,MoNbTiZr、MoNbTiZrV和MoNbTiCrAl中有明显的二次相析出。由于二次相的析出,MoNbTiZr和MoNbTiCrAl合金的硬度显著提高,而其他合金的硬度值与铸态和均匀态相当。
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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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