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Thoria-based cermet nuclear fuel: sintered microsphere fabrication by spray drying

机译:基于梭形的Cermet核燃料:喷雾干燥的烧结微球制造

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Spray drying is a physical process of granulating fine powders that is used widely in the chemical, pharmaceutical, ceramic, and food industries. It is generally used to produce flowable fine powders for mechanized processing. Occasionally it is used to fabricate sintered bodies like cemented carbides, and has been used to produce sintered fuel and actinide microspheres [1]. As a physical process, it can be adapted to many powder types and mixtures and thus, has appeal for dispersion nuclear fuels, and waste forms of various compositions. It also permits easy recycling of unused powders, and generates minimal chemical waste streams that can arise in chemical sol/gel processing. On the other hand, the containment of the radioactive powders, present safety challenges that need to be addressed [2]. Detailed formal procedures and methods for characterizing and processing UO{sub}2/ThO{sub}2 mixtures have been established and approved by the Purdue Radiological Control Committee for (1) ball-milling, (2) viscosity and rheology measurements on slurries, (3) sintering, (4) co-precipitation, (5) particle size analysis using laser scattering, (6) surface area analysis using the BET technique, (7) X-ray diffraction, (8) stoichiometry measurement, (9) zeta potential measurements and (10) ceramographic preparation. The spray drying procedures represented a particular challenge since they deal with the handling of loose powders. Studies were carried out to formulate suitable stable, dense and homogeneous aqueous slurries of urania and thoria powders for the production of urania-thoria microspheres by the spray drying method. The studies included (a) particle size distribution after ball-milling, (b) viscosity, (c) zeta potential, (d) slurry flowability, stability and cleanability, (e) microsphere green strength, and f) effects of organic dispersants on the above properties. After formulating the slurry, U,ThO{sub}2 microspheres were produced using a commercial, laboratory-scale spray dryer modified for handling these radioactive materials. The microspheres thus obtained were dried at 473 K for 4 hours, presintered at 1173 K for 2 hours and sintered at 1923K for 10 hours.
机译:喷雾干燥是造粒细粉的物理过程,这些粉末在化学,制药,陶瓷和食品工业中广泛使用。它通常用于生产可流动的细粉用于机械化处理。偶尔它用于制造像硬质碳化物这样的烧结体,并已用于产生烧结燃料和散发丝微球[1]。作为物理过程,它可以适应许多粉末类型和混合物,因此对分散核燃料的吸引力,以及各种组合物的废物形式。它还允许容易地回收未使用的粉末,并产生在化学溶胶/凝胶加工中可能产生的最小化学废物流。另一方面,放射性粉末的遏制,目前需要解决的安全挑战[2]。用于表征和处理UO {sub} 2 / tho {sub} 2混合物的详细的正式程序和方法,并由PURDUE放射控制委员会(1)球铣削,(2)浆液和流变测量的浆液, (3)烧结,(4)共析出,(5)使用激光散射的粒度分析,(6)表面积分析使用BET技术,(7)X射线衍射,(8)化学计量测量,(9) Zeta电位测量和(10)陶瓷制剂。喷雾干燥程序代表了特殊的挑战,因为它们处理了松散粉末的处理。进行研究,以通过喷雾干燥方法制备乌兰尼亚和钍粉的铀和钍粉末的合适稳定,致密和均匀水性浆料,用于生产铀 - 钍微球。包括(a)粒度分布在球磨后的粒度分布,(b)粘度,(c)zeta电位,(d)浆料流动性,稳定性和可清洁性,(e)微球绿色强度和f)有机分散剂的影响以上属性。在制定浆料后,使用用于处理这些放射性物质的商业,实验室级喷雾干燥器生产U,ThO {Sub} 2微球。将由此获得的微球在473 k下干燥4小时,在1173k下搅拌2小时,并在1923K烧结10小时。

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