Validation activities at ENEA Brasimone in support of the IFMIF-DONES design

IF 2.8 2区 工程技术 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY
D. Bernardi , P. Arena , G. Benzoni , A. Di Ronco , P. Favuzza , G. Micciché , F.S. Nitti , A. Cammi
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Abstract

IFMIF-DONES is a powerful neutron source which is being designed with the main purpose of qualifying structural materials (EUROFER being the first candidate) to be used in DEMO and fusion power plants envisaged after it. This source relies on one high current (125 mA) deuterons beam accelerated to 40 MeV which impacts on a liquid lithium target to produce an intense neutron flux through Li(d,n) stripping reactions able to simulate the nuclear responses expected on the first wall of the reactor. The engineering design of IFMIF-DONES is presently being carried out mainly in the framework of the EUROfusion Work Package Early Neutron Source (WPENS). Since 2021, a new phase has started with the launch of the FP9 WPENS workplan whose objective is to continue advancing the engineering design of the facility, putting special effort on the experimental validation of those aspects which still need to be qualified to demonstrate the fulfillment of functional and safety requirements. The ENEA Brasimone Research Centre has been and still is strongly committed in several validation tasks concerned in particular with the lithium systems design and the Remote Handling (RH) maintenance.

In this paper, an overview of the most relevant validation activities carried out in recent years or still in progress or planned at the ENEA Brasimone Research Centre in both of the aforementioned areas is presented, including the erosion/corrosion tests in the Lifus 6 loop; the nitrogen-gettering materials qualification in the ANGEL facility; and the RH and prototypes testing in the DRP laboratory for the validation of the High Flux Test Module electric connectors and the pre-heating of the Target Assembly.

ENEA Brasimone 为支持 IFMIF-DONES 设计而开展的验证活动
IFMIF-DONES 是一个强大的中子源,其设计的主要目的是鉴定结构材料(EUROFER 是第一个候选材料),以便用于 DEMO 和之后设想的核聚变发电厂。该源依靠一束加速到 40 MeV 的大电流(125 mA)氘核束,撞击液态锂靶,通过锂(d,n)剥离反应产生强中子通量,能够模拟反应堆第一层壁上的预期核反应。目前,IFMIF-DONES 的工程设计主要在欧洲早期中子源工作包(WPENS)的框架内进行。自2021年起,随着FP9 WPENS工作计划的启动,一个新的阶段已经开始,其目标是继续推进该设施的工程设计,特别是对那些仍需合格的方面进行实验验证,以证明其满足功能和安全要求。ENEA Brasimone 研究中心过去和现在都一直致力于几项验证任务,特别是与锂系统设计和远程处理 (RH) 维护有关的任务。本文概述了 ENEA Brasimone 研究中心近年来在上述两个领域开展的或仍在进行的或计划中的最相关验证活动,包括 Lifus 6 环路中的侵蚀/腐蚀测试;ANGEL 设施中的析氮材料鉴定;以及 DRP 实验室中的相对湿度和原型测试,以验证高通量测试模块的电连接器和目标组件的预热。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Nuclear Materials
Journal of Nuclear Materials 工程技术-材料科学:综合
CiteScore
5.70
自引率
25.80%
发文量
601
审稿时长
63 days
期刊介绍: The Journal of Nuclear Materials publishes high quality papers in materials research for nuclear applications, primarily fission reactors, fusion reactors, and similar environments including radiation areas of charged particle accelerators. Both original research and critical review papers covering experimental, theoretical, and computational aspects of either fundamental or applied nature are welcome. The breadth of the field is such that a wide range of processes and properties in the field of materials science and engineering is of interest to the readership, spanning atom-scale processes, microstructures, thermodynamics, mechanical properties, physical properties, and corrosion, for example. Topics covered by JNM Fission reactor materials, including fuels, cladding, core structures, pressure vessels, coolant interactions with materials, moderator and control components, fission product behavior. Materials aspects of the entire fuel cycle. Materials aspects of the actinides and their compounds. Performance of nuclear waste materials; materials aspects of the immobilization of wastes. Fusion reactor materials, including first walls, blankets, insulators and magnets. Neutron and charged particle radiation effects in materials, including defects, transmutations, microstructures, phase changes and macroscopic properties. Interaction of plasmas, ion beams, electron beams and electromagnetic radiation with materials relevant to nuclear systems.
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