Microstructure evolution during processing and mechanical properties of high-entropy alloys
Microstructure evolution during processing and mechanical properties of high-entropy alloys
批准号:
2436633
负责人:
金额:
$0.0万
依托单位:
依托单位国家:
英国
项目类别:
Studentship
财政年份:
2020
资助国家:
英国
项目状态:
已结题
起止时间:
2020 至 --
中文摘要
该项目将专注于开发,加工和理解通过粉末工艺制造的高熵合金(HEAs),该工艺允许直接制造近净形部件。高熵合金是应用于相对新型的金属合金系统的术语,其包括至少三种或更多种合金元素的接近等原子浓度。HEAs的一个令人惊讶的特征是,尽管它们的组成明显复杂,但它们通常包含完全或接近简单的固溶体。自2004年发现以来,已经小规模制造了大量的这些合金,并且在科学文献中报道了它们的结构和性能。虽然它们在技术上仍然不成熟,但一些数据显示了有趣和有吸引力的性能组合,例如在低温下的超高韧性和在室温下前所未有的高拉伸延展性和高断裂强度的组合。此外,可能的等原子组成的组合是巨大的,并且仍然未被开发,提供了开发具有优异性能的新组合物的巨大潜力。该项目将研究一些最有前途的组合物的加工性和可制造性,旨在开发工业应用的示范产品。该项目将有以下目标:-将HEA的生产规模扩大到更高的TRL,开发HEA粉末加工一步法制造路线,用于制造复杂形状的部件,两者都使用烧结(固态)和3D打印- 开发具有新的增强性能的复杂形状HEA的工业演示器;-研究加工参数与性能之间的关系;- 研究新的HEA成分。该研究将围绕相对知名的FeNiCrMnCo合金,首先研究成分对结构和性能的影响,使用场辅助烧结技术(FAST)和最先进的3D打印技术将粉末加工成块体。性能评估将侧重于了解较少的低温性能和耐辐照性,可通过与合作者进行的实验室离子辐射实验进行研究。学生们将首先制造具有简单圆柱形几何形状的典型小样品,随后,工作将集中在生产近净形部件的工艺开发上。从一个管开始,然后增加复杂的几何形状。最后,我们还将研究新的组成,包括轻质HEAs,以及添加少量有效分散强化材料的可能性。迄今为止,HEAs研究的重点一直是新的组成和性能表征。该项目的新奇在于通过为选定数量的有前途的合金开发加工路线并制造具有复杂形状的演示器来扩大生产并在更高的TRL下开放HEAs的使用。此外,还将探索使用联合收割机3D打印和烧结相结合的新工艺来“功能化”组件以扩展其性能的可能性,这将增加该项目的原创性。这项工作福尔斯EPSRC未来制造和工程研究领域,也将与MAPP:EPSRC未来制造中心使用先进粉末工艺(EP/P006566/1)保持一致。
英文摘要
The project will focus on the development, processing and understanding of high entropy alloys (HEAs) manufactured by powder based processes that allows near-net shape components to be fabricated directly. High entropy alloy is a term applied to a relatively new type of metallic alloy system that comprises near equiatomic concentrations of at least three or more alloying elements. A surprising characteristic of HEAs is that despite their apparent compositional complexity, they comprise usually a complete or near simple solid solution. Since their discovery in 2004 a large number of these alloys have been manufactured at small scale and their structure and properties reported in the scientific literature. Although they are still technologically immature some data has shown intriguing and attractive combinations of properties, such as ultra-high toughness at cryogenic temperatures and unprecedented combination of high tensile ductility and high fracture strength at room temperature. Furthermore, the combinations of possible equiatomic compositions are enormous and still unexplored offering huge potential to develop new compositions with outstanding properties. The project will investigate the processability and manufacturability of some of the most promising compositions aiming at develop demonstrators for industrial applications. The project will have the following objectives:- Scale-up production of HEAs to higher TRLs developing a HEA powder processing one-step manufacturing route for the fabrication of complex shaped component, both using sintering (solid state) and 3D priting (liquid state);- Develop industrial demonstrators of complex shape HEA with new enhanced properties;- Investigate relationship between processing parameters and properties;- Investigate new HEA compositions.The research will initially investigate composition effects on structure and properties based around the relatively well-known FeNiCrMnCo alloy, processed from powders to bulk using field assisted sintering technique (FAST) and state of the art 3D printing. The property assessment will focus on the less well-understood cryogenic properties and resistance to irradiation that can be studied by laboratory ion radiation experiments with collaborators. The students will initially manufacture typically small sample with simple cylindrical geometry, subsequently, the work will focus on the development of a process to produce near-net shape components. Starting from a tubes and then with increasing complex geometry. Finally work will also look at new compositions, including light-weight HEAs, and the possibilities of adding minor fractions of potent dispersion strengthening materials.So far the focus of the research on HEAs has been on new compositions and properties characterization. The novelty of this project resides in scaling up production and open the use of HEAs at higher TRLs by developing a processing route for a selected number of promising alloys and fabricating demonstrators with complex shape. Furthermore, the possibility of 'functionalize' components to extend their properties using a novel processing which combine 3D printing and sintering will be explored, which adds to the originality of the project. The work falls within the EPSRC Manufacturing the future and Engineering research areas and will also be aligned with the MAPP: EPSRC Future Manufacturing Hub in Manufacture using Advanced Powder Processes (EP/P006566/1).
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