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Bcc-superalloys: Engineering Resilience to Extreme Environments

Bcc-superalloys: Engineering Resilience to Extreme Environments
Bcc-超级合金:工程对极端环境的适应能力
批准号:
MR/T019174/1
负责人:
Alexander Knowles
金额:
$155.73万
依托单位:
依托单位国家:
英国
项目类别:
Fellowship
财政年份:
2020
资助国家:
英国
项目状态:
未结题
起止时间:
2020 至 --

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中文摘要
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Nuclear fusion, Generation IV fission reactors and aerospace gas turbines are critical to our future energy generation and transportation. Their operation at high temperatures necessitates construction from a variety of advanced materials. In order to withstand these extreme environments materials require high melting points, high temperature strength and environmental resistance, and, for nuclear, irradiation resistance. There are strong environmental and economic incentives to yet further increase the temperature capability of the materials used, in order to improve efficiency to reduce fuel use, as well as for improve performance, design life and safety. However, while iterative improvements are being made year on year the temperature gains are becoming ever harder to realise. In this proposal a step change in temperature capability is sought by the realisation of a new class of body-centred-cubic (bcc, an atomic crystal structure) superalloys based on (1) Tungsten, (2) Titanium, and (3) Steel, for the extreme environments of nuclear fusion and gen IV fission reactors as well as aerospace gas turbine engines.I will create a close network of industrial, national and international academic partners, that will enable translation of these advanced materials from concept through to scale-up. The collaborations will be split across the bcc-superalloys Work Packages: (WP1) Tungsten, bringing in Culham Centre for Fusion Energy (CCFE), and ANSTO Sydney, toward nuclear fusion and Gen IV fission; (WP2) Titanium, brining in TIMET and Rolls Royce, for aero-engines, as well as ETH Zurich for thin film based alloy discovery; (WP3) Steel, bringing in Rolls Royce, for gas/steam turbines, and the Max-Planck-Institut für Eisenforschung (Iron Research, MPIE) Dusseldorf for advanced characterisation and steels expertise.Bcc superalloys comprise a metal matrix, where the atoms are arranged in a bcc crystal structure, which are reinforced by forming precipitates of high strength ordered-bcc intermetallic compounds (e.g. TiFe or NiAl). This has parallels to the strategy used in current face-centred-cubic (fcc) nickel-based superalloys. However, changing the base metal's crystal structure, and therefore also the reinforcing intermetallic compound, represents a fundamental redesign and necessitates the development of new understanding. The key advantage of using a bcc refractory-metal-, titanium-, or steel- based superalloy is their increased melting point(s), which give the possibility of increased operating temperatures, as well as greatly reduced cost for the case of steels. However, the change in crystal structure requires a fundamentally new design strategy. While the limited investigations into bcc superalloys have indicated that they have attractive strength, and creep resistance, they have been held back by their low ductility. During this fellowship, I will thoroughly investigate multiple ductilisation strategies on bcc-superalloys to advance their technology readiness level (TRL) and so remove the current barrier to their commercialisation. Investigation of the systems will be undertaken by myself, the 2 Research Fellows (RF), technician, and PhD students allowed for by the programme, as well as staff time from the project partners (CCFE, TIMET, Rolls Royce, ANSTO, ETH Zurich and MPIE). The PhD students will undertake alloy development between: WP1 on Tungsten alloys 50% supported by CCFE, WP2 on Titanium, two students, one 50% by TIMET and a second 50% by Rolls Royce, with a fourth school funded by UoB on WP3 industrially supervised by Rolls Royce. The two 2 RFs and technician would work in alloy development and characterisation alongside these students, but also perform more detailed investigations, with one RF focussed on irradiation damage mechanisms, and the second RF on deformation mechanisms, both using advanced microscopy and micromechanics on which the related students would be progressively trained.
期刊论文(10)
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科研奖励(0)
会议论文
A binary beta titanium superalloy containing ordered-beta TiFe, alpha and omega
含有有序 β TiFe、α 和 omega 的二元 β 钛高温合金
DOI: 10.1016/j.scriptamat.2021.113905
发表时间: 2021
期刊: Scripta Materialia
影响因子: 6
作者: [Jones R]
通讯作者: Jones R
DOI: 10.1016/j.ijrmhm.2023.106200
发表时间: 2023-03-20
期刊: INTERNATIONAL JOURNAL OF REFRACTORY METALS & HARD MATERIALS
影响因子: 3.6
作者: [Ferreiros, P. A., von Tiedemann, S. O., Knowles, A. J.]
通讯作者: Knowles, A. J.
DOI: 10.1016/j.jnucmat.2021.153039
发表时间: 2021
期刊: Journal of Nuclear Materials
影响因子: 3.1
作者: [Ferreirós P]
通讯作者: Ferreirós P
Influence of precipitate and grain sizes on the brittle-to-ductile transition in Fe-Al-V bcc-L21 ferritic superalloys
析出相和晶粒尺寸对 Fe-Al-V bcc-L21 铁素体高温合金脆塑转变的影响
DOI: 10.1016/j.msea.2022.144031
发表时间: 2022
期刊: A
影响因子: --
作者: [Ferreirós P]
通讯作者: Ferreirós P
8
    Intermetallic Dispersion Strengthened 'IDS-Steels' for Generation IV Nuclear
    • 批准号:
      EP/T016566/1
    • 项目类别:
      Research Grant
    • 资助金额:
      $80.14万
    • 财政年份:
      2022
    • 负责人:
      Alexander Knowles
    • 依托单位:
    High Temperature Zirconium Alloys for Nuclear Fusion and Generation IV Fission Reactors
    • 批准号:
      EP/T01220X/1
    • 项目类别:
      Research Grant
    • 资助金额:
      $38.45万
    • 财政年份:
      2020
    • 负责人:
      Alexander Knowles
    • 依托单位:
    国内基金
    海外基金
    含Re、Ru先进镍基单晶高温合金中TCP相成核—生长机理的原位动态研究
    • 批准号:
      52301178
    • 项目类别:
      青年科学基金项目
    • 资助金额:
      30.00万元
    • 批准年份:
      2023
    • 负责人:
      夏万顺
    • 依托单位: