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Advanced Collimators For Verification of the Pu isotopic composition in fresh fuel by high resolution gamma spectrometry

机译:先进的准直仪,用于通过高分辨率伽马能谱仪验证新鲜燃料中的iso同位素组成

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IAEA verification of the nuclear material contained in fresh nuclear fuel assemblies is usually based on neutron coincidence counting (NCC). In the case of uranium fuel, active NCC provides the total content of uranium-235 per unit of length which, combined with active length verification, fully supports the verification. In the case of plutonium fuel, passive NCC provides the plutonium-240 equivalent content which needs to be associated with a measurement of the isotopic composition and active length measurement to complete the verification. Plutonium isotopic composition is verified by high resolution gamma spectrometry (HRGS) applied on fresh fuel assemblies assuming all fuel rods are fabricated from the same plutonium batch. For particular verifications when such an assumption cannot be reasonably made, there is a need to optimize the HRGS measurement so that contributions of internal rods to the recorded spectrum are maximized, thus providing equally strong verification of the internal fuel rods. This paper reports on simulation work carried out to design special collimators aimed at reducing the relative contribution of external fuel rods while enhancing the signal recorded from internal rods. Both cases of square lattices (e.g. 17×17 pressurized water reactor (PWR) fuel) and hexagonal compact lattices (e.g. BN800 fast neutron reactor (FNR) fuel) have been addressed. In the case of PWR lattices, the relatively large optical path to internal pins compensates for low plutonium concentrations and the large size of the fuel assemblies. A special collimator based on multiple, asymmetrical, vertical slots allows recording a spectrum from internal rods only when needed. In the FNR case, the triangular lattice is much more compact and the optical path to internal rods is very narrow. However, higher plutonium concentration and use of high energy ranges allow the verification of internal rods to be significantly strengthened. Encouraging results from the simul- tion pave the way to experimental confirmation of feasibility of the multi slot collimator concepts.
机译:原子能机构对新鲜核燃料组件中所含核材料的核查通常基于中子符合计数(NCC)。对于铀燃料,活性NCC可提供每单位长度铀235的总含量,结合活性长度验证可完全支持该验证。对于p燃料,被动NCC提供的equivalent 240当量含量需要与同位素组成的测量和活性长度的测量相关联以完成验证。假设所有燃料棒均由同一批batch制造,则by同位素同位素组成可通过应用于新鲜燃料组件的高分辨率伽马光谱法(HRGS)进行验证。对于无法合理地做出这种假设的特定验证,需要优化HRGS测量,以使内部棒对记录频谱的贡献最大化,从而对内部燃料棒提供同样强大的验证。本文报告了为设计特殊准直器而进行的仿真工作,旨在减少外部燃料棒的相对影响,同时增强内部燃料棒记录的信号。方形格(例如17×17压水堆(PWR)燃料)和六角形紧凑格(例如BN800快中子反应堆(FNR)燃料)的情况都已得到解决。在PWR晶格的情况下,到内部销的相对较大的光路补偿了low浓度低和燃料组件尺寸大的问题。基于多个非对称垂直槽的特殊准直仪仅在需要时才可记录来自内部棒的光谱。在FNR情况下,三角形晶格要紧凑得多,到达内部棒的光路非常狭窄。但是,较高的concentration浓度和高能量范围的使用可以显着加强内部棒的验证。仿真的令人鼓舞的结果为多槽准直仪概念的可行性实验验证铺平了道路。

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