中国高强度重离子加速器设施的现状

Xiaohong Zhou, Jiancheng Yang, the HIAF project team
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引用次数: 0

摘要

核物理一直致力于了解强相互作用物质的起源、结构和性质,这些物质几乎构成了宇宙中所有可见物质。尽管核物理在过去一个世纪中取得了巨大的突破和成就,但仍然存在着令当今核物理蓬勃发展的重大问题,并促使全球建设下一代重离子加速器群。为了推动国家重离子科学技术的发展,中国政府于 2015 年批准了由中国科学院近代物理研究所提出的高强度重离子加速器设施(HIAF)。HIAF由一台超导离子直线加速器、一台高能同步加速器助推器、一条高能放射性同位素束线、一个实验存储环和一些实验装置组成。利用 HIAF 从氢到铀前所未有的高强度离子束,我们可以产生大量地球上通常找不到的奇异核物质,包括超重核素、寿命极短的富中子和富质子核素、量子色动力学相图中的有限核物质、含有超子的奇异核素、介子-核结合系统和高电荷离子。因此,HIAF 将把研究人员带到最前沿,推动核物理中最具活力和魅力的领域,如探索核素在质子和中子数上的存在极限、发现奇异的核结构和性质并研究其背后的物理、了解宇宙中重元素的起源、描绘强相互作用物质的相图等。此外,HIAF 还将为开发重离子在生命科学、空间科学和材料科学中的应用提供一个绝佳的平台。HIAF于2018年12月启动建设,历时7年。土木工程和基础设施建设正按计划进行,将于 2023 年 7 月完工。加速器关键技术研发顺利进行,与国内外高校、院所、企业合作制造核心器件原型。目前,我们已进入各种设备的招标和批量生产阶段。我们计划在 2023 年夏季开始设施安装。作为向国内外研究人员开放的科学用户设施,HIAF 用户社区在确定研究计划和提出需求方面发挥着关键作用。我们需要大量合作者的专业知识、愿望和资源。我们已经建立并将继续建立致力于特定研究课题的合作关系。这些合作组织开发新的实验技术和方法,并负责设计和建立测量系统。我们已经完成了实验装置的设计。一个新的充气反冲分离器和一个基于存储环的新型等时质谱仪已经建成,其他测量系统正在建设中。该设施计划于 2025 年底投入使用。耗资 25 亿元人民币的重离子加速器投入运行后,这一世界级设施将为我国提供卓越的发现潜力,从而确保我国在重离子物理和技术领域的持续竞争力。我们的目标是以 HIAF 为基础,在核科学、加速器物理和技术以及高能重离子应用的研究和教育方面建立一个世界领先的实验室,以满足社会需求。本文介绍了 HIAF 的土木工程和基础设施建设的进展和现状,介绍了关键加速器技术和核心装置原型的研发以及新实验技术和方法的开发,并简要介绍了实验装置的设计和建设以及相关的物理研究计划。
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Status of the high-intensity heavy-ion accelerator facility in China

Nuclear physics has been aiming at understanding of the origin, structure, and property of strongly interacting matters, which constitute nearly all visible matter in the universe. Despite tremendous breakthroughs and achievements over the past century, there still exists overarching questions that animate nuclear physics today and incite constructing next-generation heavy-ion accelerator complexes worldwide. In order to promote the national development of heavy-ion science and technology, China government approved the high-intensity heavy-ion accelerator facility (HIAF) in 2015, proposed by the Institute of Modern Physics, Chinese Academy of Sciences. HIAF is composed of a superconducting ion linear accelerator, a high-energy synchrotron booster, a high-energy radioactive isotope beam line, an experimental storage ring, and a few experimental setups. By using HIAF characterized with unprecedented intense ion beams from hydrogen through uranium, we can produce a large variety of exotic nuclear matters not normally found on the Earth, including super-heavy nuclides, short-lived extremely neutron-rich and proton-rich nuclides, finite nuclear matters in the quantum chromodynamics phase diagram, exotic nuclides containing hyperons, meson-nucleus-bound systems, and highly charged ions. Therefore, HIAF will bring researchers to the forefront of promoting the most vigorous and fascinating fields in nuclear physics, such as to explore the limits to the existence of nuclides in terms of proton and neutron numbers, to discover exotic nuclear structure and properties and then to study the physics behind, to understand the origin of heavy elements in the cosmos, to depict the phase diagram of strongly interacting matter, etc. In addition, HIAF will provide an excellent platform to develop heavy-ion applications in life science, space science, and material science. The construction of HIAF started up in December of 2018 and takes 7 years. The civil engineering and infrastructure are being constructed on time schedule and will be completed in July, 2023. R&D on key accelerator techniques are going on successfully, and prototypes of core devices are fabricated in collaboration with home and abroad universities, institutes, and companies. Presently, we come to the stage of invitation for bids and volume production of various apparatuses. We plan to start facility installation in summer of 2023. As a scientific user facility opening to domestic and oversea researchers, HIAF user community plays key roles in defining research programs and raising requirements. We call upon expertise, aspirations, and resources of a host of collaborators. Collaborations, dedicated to specific research subjects, are established and will be established. These collaborations develop new experimental techniques and methods and take responsibility for design and building of measurement systems. We have completed the design of experimental setups. A new gas-filled recoil separator and a novel storage-ring-based isochronous mass spectrometer are already built, and other measurement systems are under construction. The facility commissioning is scheduled at the end in the year of 2025. After into operation of the 2.5 billion Chinese yuan HIAF, this world-class facility will ensure the nation’s continued competitiveness in heavy-ion physics and technology through provision of outstanding discovery potential. Based on HIAF, we aim at establishing a world’s leading laboratory for research and education in nuclear science, accelerator physics and technology, and applications of energetic heavy ions to meet societal needs. In this paper, progress and status of civil engineering and infrastructure construction of HIAF are introduced, R&D on critical accelerator techniques and prototypes of core devices as well as development of new experimental techniques and methods are presented, and design and construction of experimental setups and the associated physics research programs are briefly depicted.

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