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Towards the operational estimation of a radiological plume using data assimilation after a radiological accidental atmospheric release

机译:在放射性意外大气释放后,利用数据同化,对放射性羽流进行操作估算

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摘要

In the event of an accidental atmospheric release of radionuclides from a nuclear power plant, accurate real-time forecasting of the activity concentrations of radionuclides is required by the decision makers for the preparation of adequate countermeasures. The accuracy of the forecast plume is highly dependent on the source term estimation. On several academic test cases, including real data, inverse modelling and data assimilation techniques were proven to help in the assessment of the source term. In this paper, a semi-automatic method is proposed for the sequential reconstruction of the plume, by implementing a sequential data assimilation algorithm based on inverse modelling, with a care to develop realistic methods for operational risk agencies. The performance of the assimilation scheme has been assessed through the intercomparison between French and Finnish frameworks. Two dispersion models have been used: Polair3D and Silam developed in two different research centres. Different release locations, as well as different meteorological situations are tested. The existing and newly planned surveillance networks are used and realistically large multiplicative observational errors are assumed. The inverse modelling scheme accounts for strong error bias encountered with such errors. The efficiency of the data assimilation system is tested via statistical indicators. For France and Finland, the average performance of the data assimilation system is strong. However there are outlying situations where the inversion fails because of a too poor observability. In addition, in the case where the power plant responsible for the accidental release is not known, robust statistical tools are developed and tested to discriminate candidate release sites.
机译:如果核电厂从大气中意外释放出放射性核素,则决策者需要准确实时地实时预测放射性核素的活动浓度,以准备适当的对策。预测羽流的准确性高度取决于源项估计。在包括实际数据在内的几个学术测试案例中,逆建模和数据同化技术被证明有助于评估源术语。本文提出了一种半自动方法,通过实施基于逆建模的顺序数据同化算法,对烟羽进行顺序重建,以期为操作风险代理机构开发切实可行的方法。通过法国和芬兰框架之间的比较评估了同化方案的性能。使用了两个色散模型:在两个不同的研究中心开发的Polair3D和Silam。测试了不同的释放位置以及不同的气象情况。使用现有和新计划的监视网络,并假设实际存在较大的乘法观测误差。逆建模方案解决了此类错误遇到的严重错误偏差。数据同化系统的效率通过统计指标进行测试。对于法国和芬兰,数据同化系统的平均性能很强。但是,在少数情况下,由于可观察性太差,反演失败。另外,在未知负责意外释放的电厂的情况下,开发并测试了可靠的统计工具以区分候选释放地点。

著录项

  • 来源
    《Atmospheric environment》 |2011年第17期|p.2944-2955|共12页
  • 作者单位

    Universite Paris-Est, CEREA, Joint Laboratory tcole des Ponts ParisTech and EDF R&D, Champs-sur-Marne, 77455 Marne la Vallee, France;

    Finnish Meteorological Institute, Helsinki, Finland;

    Universite Paris-Est, CEREA, Joint Laboratory tcole des Ponts ParisTech and EDF R&D, Champs-sur-Marne, 77455 Marne la Vallee, France INRIA, Paris Rocquencourt research centre, France;

    Finnish Meteorological Institute, Helsinki, Finland;

    Institute of Radiation Protection and Nuclear Safety, BP 17, 92262 Fontenay-aux-Roses, France Universite Paris-Est, CEREA, Joint Laboratory tcole des Ponts ParisTech and EDF R&D, Champs-sur-Marne, 77455 Marne la Vallee, France;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    data assimilation; atmospheric dispersion; radionuclides; emergency response;

    机译:数据同化大气扩散放射性核素;紧急反应;
  • 入库时间 2022-08-17 13:53:09

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