Influence of the Chromium Content on the Characteristics of the Matrix, the Tantalum Carbides Population, and the Hardness of Cast Co(Cr)-0.4C-6Ta Alloys

IF 1.5 4区 材料科学 Q4 MATERIALS SCIENCE, MULTIDISCIPLINARY Micro & Nano Letters Pub Date : 2023-02-16 DOI:10.3390/micro3010017
P. Berthod, Merzouk Bouaraba, Junfu Cai
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引用次数: 1

Abstract

The mechanical and chemical behaviors of cast cobalt-base superalloys are governed by the carbides and by a reactive element, which is often chromium. The content of this later element, which is efficient in resisting hot oxidation and also hot corrosion, may have consequences on the melting temperature, microstructure, and mechanical properties at high temperatures and at room temperature. Seemingly, the effect of chromium content on the microstructure and properties of cast equi-axed Co-Cr-Ta-C superalloys containing TaC as single reinforcing carbide and in high-enough quantities to achieve a high level of creep resistance has not been the subject of previous investigations. The present work is devoted to the exploration of this influence of Cr content on the as-cast microstructure of a model alloy in this category, as well as on its microstructure transformations at high temperatures. The work aims to help rate the Cr content to achieve the best characteristics in machinability and high-temperature properties. This is of great importance for fabricability (production cost) and sustainability in service (long enough lifetime performance). A series of six alloys derived from a rather well-known alloy and presenting various Cr contents were thus elaborated by casting. Their microstructures were investigated in their as-cast state as well as in an aged state resulting from a 4-day stage at 1400 K. Vickers indentation was also carried out to study how hardness may evolve with Cr content. It was seen that the higher the Cr content, the lower the solidus temperature, the coarser the TaC population, the harder the alloy, and the higher the risk of brittleness. In order to reach the best compromise, the preferred Cr weight content range, as identified by this work, is 20–30%; indeed, for such Cr contents: (1) the matrix is austenitic, then dense, and then hard and not brittle, and thus is mechanically resistant and tough; (2) the TaC carbides are script-shaped and resistant against morphology changes at high temperatures, and thus efficiently preserve interdendritic cohesion for a long time, and, consequently, (3) the alloys are machinable, have expected good toughness, and can be resistant against creep deformation as well as oxidation and corrosion at high temperatures thanks to the Cr content, allowing for chromium-forming behavior.
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铬含量对铸造Co(Cr)-0.4C-6Ta合金基体特征、碳化钽族及硬度的影响
铸造钴基高温合金的力学和化学行为是由碳化物和一种活性元素控制的,这种元素通常是铬。后一种元素的含量可以有效地抵抗热氧化和热腐蚀,可能对高温和室温下的熔化温度、微观结构和机械性能产生影响。表面上看,铬含量对含有TaC的铸态等轴Co-Cr-Ta-C高温合金的组织和性能的影响,作为单一增强碳化物,并且铬含量足够高,以达到高水平的抗蠕变性能,这是以前研究的主题。目前的工作致力于探索Cr含量对这类模型合金铸态微观组织的影响,以及其高温下的微观组织转变。这项工作的目的是帮助评定Cr含量,以达到最佳的切削性能和高温性能。这对于可制造性(生产成本)和服务的可持续性(足够长的寿命性能)非常重要。从一种相当知名的合金中衍生出一系列六种合金,并呈现出不同的Cr含量,从而通过铸造加以阐述。研究了铸态和1400k时效态下的显微组织。用维氏压痕法研究了硬度随Cr含量的变化规律。结果表明,Cr含量越高,固相温度越低,TaC族越粗,合金硬度越高,脆性风险越大。为达到最佳折衷,本工作确定的Cr重量含量范围为20 ~ 30%;事实上,对于这样的Cr含量:(1)基体先为奥氏体,再为致密,再为硬而不脆,因此具有机械抗性和韧性;(2) TaC碳化物呈文字形,在高温下不易发生形态变化,因此可以长时间有效地保持枝晶间的内聚,因此,(3)合金可加工,具有预期的良好韧性,并且由于Cr含量,可以抵抗蠕变变形以及高温下的氧化和腐蚀,从而允许铬形成行为。
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来源期刊
Micro & Nano Letters
Micro & Nano Letters 工程技术-材料科学:综合
CiteScore
3.30
自引率
0.00%
发文量
58
审稿时长
2.8 months
期刊介绍: Micro & Nano Letters offers express online publication of short research papers containing the latest advances in miniature and ultraminiature structures and systems. With an average of six weeks to decision, and publication online in advance of each issue, Micro & Nano Letters offers a rapid route for the international dissemination of high quality research findings from both the micro and nano communities. Scope Micro & Nano Letters offers express online publication of short research papers containing the latest advances in micro and nano-scale science, engineering and technology, with at least one dimension ranging from micrometers to nanometers. Micro & Nano Letters offers readers high-quality original research from both the micro and nano communities, and the materials and devices communities. Bridging this gap between materials science and micro and nano-scale devices, Micro & Nano Letters addresses issues in the disciplines of engineering, physical, chemical, and biological science. It places particular emphasis on cross-disciplinary activities and applications. Typical topics include: Micro and nanostructures for the device communities MEMS and NEMS Modelling, simulation and realisation of micro and nanoscale structures, devices and systems, with comparisons to experimental data Synthesis and processing Micro and nano-photonics Molecular machines, circuits and self-assembly Organic and inorganic micro and nanostructures Micro and nano-fluidics
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