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EUROPEAN COMMISSION SAFEGUARDS AND NON-PROLIFERATION RD: 60 YESRS OF EXPERIENCE

机译:欧盟委员会保障和不扩散研发:60是肯尼的经验

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Sixty years ago the Euratom Treaty was signed in Rome. Article 8 of the treaty announced the establishment of the Joint Research Centre by the European Commission to carry out research programmes and other tasks assigned to it by the Commission. Under Art 77 of the Treaty, the European Commission is tasked to set up a Nuclear Safeguards system to assure that both "ores, source materials and special fissile materials are not diverted from their intended uses as declared by the users" and that "the provisions relating to supply and any particular safeguarding obligations assumed by the Community under an agreement concluded with a third State or an international organisation are complied with". For the implementation of article 77 by the Euratom Safeguards Inspectorate underpinning R&D has delivered significant contributions to the safeguards effectiveness and efficiency. This paper starts with a short historical overview of major R&D contributions by JRC to European safeguards. It will illustrate how over time new technologies found their way into safeguards, emphasizing that nuclear materials measurements, and associated reference materials, continue to constitute the core activity which still today present significant R&D challenges (from the particle level, through (milli)gram scale samples all the way up to bulk materials like MTR fuel plates and encapsulated spent nuclear fuel). Recent innovations in verification technologies, advanced sealing systems and integrated process monitoring will also be highlighted. The main part of the paper aims to demonstrate how Euratom Safeguards R&D, mostly in close collaboration with European (e.g. through ESARDA) and/or international partners (e.g. through collaboration with US-DoE, JAEA, etc) , continues to be more creative and inventive than ever developing new tools and approaches directly to the benefit of the Euratom Safeguards Inspectorate, the IAEA Safeguards Division and other international safeguards parties. Safeguards challenges continue to persist e.g. both at the front end of the fuel cycle (mining/ores) and the very back end (deep geological disposal). Understanding the impact of the spread of sensitive and/or dual-use technologies also merits further R&D as well as features of safeguards implementation like safeguards by design, acquisition path analysis and state level concept.
机译:六十年前,欧洲问题条约在罗马签署。该条约第8条宣布建立欧洲委员会联合研究中心开展委员会分配给它的研究方案和其他任务。根据“条约”第77条,欧洲委员会负责设立核保障体系,以确保“矿石,源材料和特殊的裂变材料并未从用户宣布的预期用途转移到”这些规定“与第三州或国际组织结束的协议下,社会承担的供应和任何特殊保障义务符合“。为了执行第77条的欧洲保障审查员监察机构的支持者,资助研发为保障效率和效率提供了重大贡献。本文始于JRC对欧洲保障措施的主要研发贡献的简短概述。它将说明新技术如何发现他们进入保障措施,强调核材料测量和相关的参考资料,继续构成今天仍然存在显着的研发挑战(从粒子水平,通过(毫米)克拉姆样品一直到散装材料,如MTR燃料板和封装的废核燃料)。最近的验证技术创新,也会突出验证技术,先进的密封系统和集成过程监控。本文的主要部分旨在展示欧元兑欧洲危险,主要是与欧洲(例如通过伊斯尔达)和/或国际合作伙伴(例如通过与US-DOE,JAEA等)密切合作,仍然更具创造力和/或国际合作伙伴创造性比以往任何时候都直接开发新的工具和涉及欧洲国际原子能机构保障师司和其他国际保障派对的利益。保障挑战继续坚持为持续。无论是燃料循环的前端(采矿/矿石)和背部的前端(深层地质处理)。了解敏感和/或两用技术的扩散的影响也使R&D进一步优异,以及通过设计,采集路径分析和状态级概念等保护等保护。

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