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Americium Oxide Surrogate Studies: Pursuing European Radioisotope Power Systems Fuel Form Development

机译:氧化meric替代物研究:追求欧洲放射性同位素动力系统燃料形式的开发

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The European Space Agency funded programme into the research and development of European radioisotope power systems (RPSs) began in 2008. Three RPS technologies are under development, namely, radioisotope heater units, radioisotope thermoelectric generators, and Stirling generators. Americium (241Am) was selected as the `fuel', which provides radiogenic heat to the RPSs. An essential aspect of the programme is the ability to create an americium oxide fuel form, namely discs or pellets, that meet a range of requirements e.g. intact bodies with relatively high relative densities that allow for He-outgassing. Research with surrogates for americium oxides is essential for investigating the range of variables that influence the ability to achieve this whilst limiting the research with the highly radioactive material. In this study, americium oxide surrogates (e.g. Nd2O3) have been created using two different techniques (continuous oxalate precipitation and calcination, and sol-gel and calcination) with the objective of creating particles with differing morphology. Owing to the polymorphism of Nd2O3, X-ray diffraction is conducted to assess crystal structure phase changes in the powder material to inform sintering studies. The surrogate powders are cold-pressed and sintered to assess the impact on pellet properties e.g. density and integrity. The surrogate fuel study highlights the importance of assessing the impact of particle shape and crystal structure on the ability to meet fuel form requirements, and will inform future research with the americium oxide fuel.
机译:欧洲航天局资助的用于研究欧洲放射性同位素动力系统(RPS)的计划始于2008年。目前正在开发三种RPS技术,即放射性同位素加热器,放射性同位素热电发电机和斯特林发电机。 meric( 241 Am)被选为“燃料”,为RPS提供辐射热。该程序的一个基本方面是能够创建一种氧化of燃料形式,即圆盘或小球,以满足一系列要求,例如:相对密度相对较高的完整体,可释放出氦气。用sur氧化物替代物进行研究对于调查影响实现此目标能力的变量范围至关重要,同时又限制了高放射性物质的研究。在这项研究中,氧化oxide替代物(例如Nd 2 Ø 3 )是使用两种不同的技术(草酸盐连续沉淀和煅烧以及溶胶-凝胶和煅烧)制成的,目的是产生具有不同形态的颗粒。由于钕的多态性 2 Ø 3 进行X射线衍射以评估粉末材料中的晶体结构相变,从而为烧结研究提供依据。将替代粉末冷压并烧结,以评估其对丸粒性能的影响,例如:密度和完整性。替代燃料研究突出了评估颗粒形状和晶体结构对满足燃料形式要求的能力的影响的重要性,并将为氧化research燃料的未来研究提供参考。

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