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MAINTAiN - Multi-scAle INTegrity assessment for Advanced high-temperature Nuclear systems

MAINTAiN - Multi-scAle INTegrity assessment for Advanced high-temperature Nuclear systems
维护 - 先进高温核系统的多尺度完整性评估
批准号:
EP/R020108/1
负责人:
Mahmoud Mostafavi
金额:
$50.21万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2018
资助国家:
英国
项目状态:
已结题
起止时间:
2018 至 --

项目摘要

项目成果

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中文摘要
翻译
该项目旨在为堆芯核部件在辐照损伤情况下的蠕变变形提供一个预测模型。蠕变变形是在高于材料熔点一半的温度下,材料在标称载荷下的时间依赖性永久变形。蠕变变形对在高温下工作的工程部件的结构完整性起着至关重要的作用,例如在航空航天推进和能源发电中的那些部件。它是高温核电站的主要寿命限制因素之一。这包括聚变反应堆,第四代裂变核反应堆和英国独特的先进气冷反应堆。这个项目的背景是核。英国的能源组合目前正在并计划继续受益于核能的实质性贡献。此外,英国是世界上唯一一个在设计、建造和运营高温核电站方面拥有深入知识的国家,其许多结构部件都在蠕变状态下工作。在欣克利角、威尔法和泊岸立即新建的反应堆不会在诱发蠕变的温度下工作。然而,聚变反应堆和第四代裂变核反应堆被设想在高得多的温度下工作以提高它们的热效率,因此它们容易发生蠕变变形和损坏。因此,到目前计划于2050年建造的下一代核电站建成时,英国很有可能失去其目前在高温结构完整性方面无与伦比的权威。该提案的目标之一是通过发展该领域的新知识和新技术科学家来保持英国在核工业高温结构完整性方面的领先地位。目前的蠕变工程结构完整性规范是基于从某些标准条件下的试验中提取的经验方程。他们忽略了材料的微观结构,这在60年的电厂服务演变。一个重要的限制因素,目前被忽视的工程规范,并将在下一代发电厂的部件的机械响应的高度影响是辐照损伤。因此,我们的目标之一是包括辐照损伤对材料的宏观尺度力学响应的影响,包括它使材料的微观结构在其本构关系的变化。为此,我们的主要目标是开发一个预测性的,多尺度的,微观结构知情蠕变变形模型。该模型涵盖了控制高温下位错迁移率的基本物理方程(位错是材料晶体结构中的缺陷,它们在载荷下的运动占材料永久变形的大部分),以及具有复杂几何形状和不同加载历史和条件的工程部件的行为。该模型将帮助工程师预测核反应堆中关键部件的行为,并对它们的适用性做出明智的决定,这是一个至关重要的安全决策。一旦我们的蠕变模型通过微观,中观和宏观三个尺度的实验验证和验证,它将为新一代的工程结构完整性规范提供基础,这些规范是基于对材料的机械理解和其微观结构,因此是预测性的,更准确,不局限于它所基于的测试条件。这将是英国在设计,建造和运营未来核电厂中发挥重要作用的宝贵资产。
英文摘要
This project aims to provide a predictive model for creep deformation of in-core nuclear components in the presence of irradiation damage. Creep deformation is time-dependent permanent deformation of materials under load nominally at temperatures higher than half the material melting point. Creep deformation plays a crucial role in the structural integrity of engineering components that work at high temperature such as those in aerospace propulsion and energy generation. It is one of the main life limiting factors of nuclear power plants that work at high temperature. This includes fusion reactors, Gen IV fission nuclear reactors, and UK's unique Advanced Gas-cooled Reactors. The context of this project is nuclear. UK's energy mix currently is and planned to continue to benefit from substantive contributions from nuclear. In addition, UK is the only country in the world that has in-depth and knowledge of designing, building, and operating high temperature nuclear power plants with many of its structural components working in the creep regime. The immediate new build reactors at Hinckley Point, Wylfa, and Moorside do not work at temperatures that induce creep. However, fusion reactors and Gen IV fission nuclear reactors are envisaged to be working at much higher temperatures to increase their thermal efficiency and as such they are susceptible to creep deformation and damage. Therefore, there is a high risk that UK loses its current unrivalled authority on high temperature structural integrity by the time the next generation of nuclear power plants are built, currently planned for 2050. One of the objectives of this proposal is to maintain UK lead in high temperature structural integrity of nuclear industry by developing new knowledge and new skilled scientists in the field.The current creep engineering structural integrity codes are based on empirical equations extracted from tests in certain standard conditions. They ignore the material microstructure, which evolves during a 60 years' service of a power plants. An important limiting factor that is currently ignored in the engineering codes and will be highly influential in the mechanical response of components for next generation power plants is irradiation damage. One of our objectives is therefore to include the effects of irradiation damage on the macro-scale mechanical response of materials by including the changes it makes on the material microstructure in their constitutive laws. To this end our main objective is to develop a predictive, multi-scale, microstructurally informed creep deformation model. The model spans from the fundamental physical equations that govern the dislocation mobility at high temperature (dislocations are imperfection in material crystal structure and their movements under load account for most the material permanent deformation) to the behaviour of engineering components with complex geometries and varied loading history and conditions made from homogenised material. The model will help engineers to predict the behaviour of critical components in a nuclear reactor and make informed decision on their fitness for service which is a crucial safety decision.Once our creep model is validated and verified by experiments across three mico, meso, and macro length scales, it will provide the foundation for a new generation of engineering structural integrity codes that are based on a mechanistic understanding the material and its microstructure and therefore is predictive, more accurate and not confined to the test conditions it is based on. This will be an invaluable asset for the UK to play a major role in designing, building, and operating future nuclear power plants.
期刊论文(10)
专著(0)
科研奖励(0)
会议论文
DOI: 10.1016/j.ijplas.2022.103249
发表时间: 2022-02-16
期刊: INTERNATIONAL JOURNAL OF PLASTICITY
影响因子: 9.8
作者: [Agius, Dylan, Kareer, Anna, Knowles, David]
通讯作者: Knowles, David
DOI: 10.1016/j.actamat.2022.118658
发表时间: 2023
期刊: Acta Materialia
影响因子: 9.4
作者: [Demir E]
通讯作者: Demir E
DOI: 10.1016/j.ijsolstr.2018.01.028
发表时间: 2018-05
期刊: International Journal of Solids and Structures
影响因子: 3.6
作者: [T. Erinosho;K. A. Venkata;M. Mostafavi;D. Knowles;C. Truman]
通讯作者: T. Erinosho;K. A. Venkata;M. Mostafavi;D. Knowles;C. Truman
DOI: 10.1016/j.mex.2022.101763
发表时间: 2022
期刊: METHODSX
影响因子: 1.9
作者: [Agius, Dylan, Al Mamun, Abdullah, Truman, Christopher, Mostafavi, Mahmoud, Knowles, David]
通讯作者: Knowles, David
共 9 条
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    • 财政年份:
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    • 批准号:
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    • 项目类别:
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    • 资助金额:
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    • 批准年份:
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