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Industrial Application at Public Beamlines of SPring-8 SPring-8 公共光束线的工业应用
Pub Date : 2024-05-01 DOI: 10.1080/08940886.2024.2330331
Masugu Sato
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引用次数: 0
UVSOR Synchrotron Facility 40th Anniversary UVSOR 同步辐射设施 40 周年纪念
Pub Date : 2024-05-01 DOI: 10.1080/08940886.2024.2330876
Satoshi Kera, Tohru Araki, Kiyohisa Tanaka, Yoshitaka Taira, Masahiro Katoh, Fumihiko Matsui
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引用次数: 0
Election of the 13th German Committee for Research with Synchrotron Radiation 选举第 13 届德国同步辐射研究委员会委员
Pub Date : 2024-05-01 DOI: 10.1080/08940886.2024.2330878
Martina Müller, Dirk Lützenkirchen-Hecht
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引用次数: 0
2023 ALS User Meeting Returned On-Site to Focus on the Future 2023 年 ALS 用户会议重返现场,聚焦未来
Pub Date : 2024-03-01 DOI: 10.1080/08940886.2024.2313408
Ashley White
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引用次数: 0
SLS 2.0 – The Upgrade of the Swiss Light Source SLS 2.0 - 瑞士光源的升级版
Pub Date : 2024-03-01 DOI: 10.1080/08940886.2024.2312059
Philip R. Willmott, Hans Braun
The Swiss Light Source (SLS) will be upgraded by replacing the storage ring in the existing hall in 2023Ű24. The SLS lattice build from 12 triple-bend arcs operating at 2.4 GeV is replaced by a 12 × 7-BA lattice operating at 2.7 GeV to increase hard X-ray brightness by a factor 60. The layout is constrained by the existing tunnel to 288 m circumference, nevertheless a low emittance of 158 pm is realized using longitudinal gradient and reverse bends. Dynamic aperture is suicient to start with classical injection based on a 4-kicker bump. An upgrade path for on-axis injection with fast kickers has been implemented. Small beam pipes of 18 mm inner diameter and corresponding reduction of magnet bores, and the use of permanent magnets for all bending magnets enables a densely packed lattice and contributes most to a reduction of total power consumption of the facility by 30%.
瑞士光源(SLS)将于 2023 Ű24年通过更换现有大厅中的存储环进行升级。SLS 的晶格由 12 个工作在 2.4 GeV 的三弯弧形晶格组成,将被一个工作在 2.7 GeV 的 12 × 7-BA 晶格所取代,从而将硬 X 射线亮度提高 60 倍。由于现有隧道的限制,该布局的周长仅为 288 米,但利用纵向梯度和反向弯曲实现了 158 pm 的低发射率。动态孔径足够大,可以从基于 4 碰撞器的经典注入开始。此外,还实现了使用快速启动器进行同轴注入的升级路径。18 毫米内径的小横梁管和相应的磁体孔径减小,以及所有弯曲磁体均使用永久磁铁,使得晶格密集,从而将设备的总功耗降低了 30%。
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引用次数: 1
Recent Advances for Soochow University Beamline at National Synchrotron Radiation Laboratory, China 中国国家同步辐射实验室苏州大学光束线的最新进展
Pub Date : 2024-03-01 DOI: 10.1080/08940886.2024.2313416
Jun Zhong, Xuhui Sun, Yang Song, Tsun K. Sham
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引用次数: 0
30 Years of Light: NSRRC’s Anniversary Milestone in 2023 30 年之光:国家铁路研究与发展中心 2023 年周年里程碑
Pub Date : 2024-03-01 DOI: 10.1080/08940886.2024.2313411
Stella Su
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引用次数: 0
DAta from PHoton and Neutron Experiments – DAPHNE4NFDI – Annual Meeting 2023 来自光子和中子实验的 DAta - DAPHNE4NFDI - 2023 年年会
Pub Date : 2024-01-04 DOI: 10.1080/08940886.2023.2277655
P. Dolcet, J.-D. Grunwaldt, S. Hövelmann, L. Amelung, A. Schneidewind
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引用次数: 0
A New Software Architecture for Experiment Control at Diamond Light Source 钻石光源实验控制新软件架构
Pub Date : 2024-01-04 DOI: 10.1080/08940886.2023.2277662
Sky French, Mark Heron, Tom Cobb, Eliot Hall, Joe Handford, Paul Jeffreys, David Jenkins, Chris Reynolds
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引用次数: 0
The Karabo SCADA System at the European XFEL 欧洲 XFEL 的卡拉波 SCADA 系统
Pub Date : 2024-01-04 DOI: 10.1080/08940886.2023.2277650
D. Göries, W. Ehsan, G. Flucke, N. Annakkappala, V. Bondar, R. Costa, S. Esenov, G. Giovanetti, D. Hickin, I. Karpics, A. Klimovskaia, A. Mahmud, A. Parenti, P. J. S. Prafulla, A. Samadli, H. Santos, A. Silenzi, M. Smith, F. Sohn, M. Staffel, A. Garcia Tabares, J. Bin Taufik, G. Varghese, C. Youngman, S. Hauf
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引用次数: 0
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