为ESS低温慢化剂系统开发原位正对准氢馏分测量系统

IF 1.8 3区 工程技术 Q3 PHYSICS, APPLIED
Hideki Tatsumoto , Takumi Hasegawa , Yuki Sakamoto , Yuki Shiro , Yuka Horikawa , Hiroaki Kobayashi , Makoto Teshigawara , Hossein Sina
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引用次数: 0

摘要

在欧洲溅射源(ESS)ERIC,液氢慢化剂的开发主要是为了获得较高的对氢分数,这有助于在极高亮度下获得较高的中子强度。低温慢化剂系统(CMS)配备有催化剂,可将氢从正态转化为副态,使冷慢化剂中的副氢分数保持在理想的 99.5%以上,这是向中子仪器提供高亮度冷中子束所必需的。利用拉曼光谱技术开发了一套液氢正、对位分馏(OPMS)现场测量系统,用于检测中子散射驱动的对位-正位反向转换引起的向高正氢分馏的任何不良偏移。拉曼光学系统安装在一个模拟 OPMS 真空室中,并通过流动液氢进行了性能评估测试。经过验证,所开发的拉曼光学系统成功地测量了对氢部分,精度达到 0.1%,满足了要求。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development of an in-situ ortho-to-parahydrogen fraction measurement system for the ESS cryogenic moderator system

At the European Spallation Source (ESS) ERIC, the liquid hydrogen moderator development is undertaken for its predominantly high parahydrogen fraction, which helps to attain a higher neutron intensity at a very high brightness. The Cryogenic Moderator System (CMS) is equipped with a catalyst to convert hydrogen from the ortho to the parastate to keep desirably high parahydrogen fractions of more than 99.5% in the cold moderators, which is required to deliver high brightness cold neutron beams to the neutron instruments. An in-situ measurement system for the ortho and para fractions of liquid hydrogen (OPMS) has been developed using a Raman spectroscopy to detect any undesirable shift towards a high orthohydrogen fraction caused by neutron scattering driven para-to-ortho back conversion. A Raman optics system was installed into a mock-up OPMS vacuum chamber and its performance evaluation tests have been conducted by flowing liquid hydrogen. It was verified that the developed Raman optics system succeeded in measuring the parahydrogen fraction with an accuracy of 0.1%, which met the requirement.

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来源期刊
Cryogenics
Cryogenics 物理-热力学
CiteScore
3.80
自引率
9.50%
发文量
0
审稿时长
2.1 months
期刊介绍: Cryogenics is the world''s leading journal focusing on all aspects of cryoengineering and cryogenics. Papers published in Cryogenics cover a wide variety of subjects in low temperature engineering and research. Among the areas covered are: - Applications of superconductivity: magnets, electronics, devices - Superconductors and their properties - Properties of materials: metals, alloys, composites, polymers, insulations - New applications of cryogenic technology to processes, devices, machinery - Refrigeration and liquefaction technology - Thermodynamics - Fluid properties and fluid mechanics - Heat transfer - Thermometry and measurement science - Cryogenics in medicine - Cryoelectronics
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