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Synthesis and characterization of lithium silicate ceramic for the test blanket module (TBM) in fusion reactors

机译:聚变反应堆中测试毯组件(TBM)的硅酸锂陶瓷的合成与表征

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摘要

Lithium-based ceramic, Li4SiO4, is being considered as promising solid breeder materials in the tritium breeding blanket of thermonuclear fusion reactors, because of its high Li- density, high thermal conductivity and prominent tritium release rate at low temperatures between 300 and 500oC, its low activation characteristics, low thermal expansion coefficient and high thermal conductivity. For tritium recovery purpose samples having 85-90% of true density with open porosity (around 5%) is required. Uniform small grain size distribution (having diameter between 2-4μm) is preferable as activation energy for tritium diffusion through grain is higher compared to grain boundary. Solid state method requires higher calcination temperature, producing coarser particle and impurity, which adversely affects in achieving high sintered density (above 85% of theoretical density) and forms large grain size with entrapped closed pore inside the grain.udIn the current work Li4SiO4 powder was synthesized by solution combustion technique using cheaper precursor of silica i.e. from rice husk ash (an agricultural waste). We found that by controlling the metal to citrate ratio of the solution and calcination temperature of the as-burnt powder phase purity can be achieved. The particle size of Li4SiO4 powder (prepared at M/C=1.4) was found to be 100-200 nm with low surface area (2m2/gm). It was found that Li4SiO4 powder can be sintered at a temperature as low as 900oC with a density ~ 85% of the theoretical density. Phase stability in the sintered sample was studied. Attempts were made to minimize the lithium loss from the sintered specimens. Moisture reactivity studies were conducted together with FTIR spectroscopy on calcined powder to find out the moisture affinity of the samples. Kinetics of the initial stage of sintering from the shrinkage data has been analyzed to find out the sintering mechanism. Thermal diffusivity measured by laser flash method. Thermal conductivity value depends on the density of the sample. AC impedance method has been used to characterize electrical property of the sintered sample as tritium diffusion is related to the Li+ ion conductivity in Li4SiO4.ud
机译:锂基陶瓷Li4SiO4被认为是热核聚变反应堆the育毯中有希望的固体育种材料,因为它具有高的Li密度,高的导热性和在300至500oC的低温下temperatures的显着释放速率,低活化特性,低热膨胀系数和高导热率。对于recovery的回收,要求样品的真实密度为85-90%,且孔隙率为开孔(约5%)。均匀小的晶粒分布(直径在2-4μm之间)是优选的,因为tri扩散穿过晶粒的活化能比晶界高。固态法需要较高的煅烧温度,产生较粗的颗粒和杂质,这对实现高烧结密度(高于理论密度的85%)产生不利影响,并形成大晶粒尺寸,并在晶粒内部形成封闭的孔。通过溶液燃烧技术,使用便宜的二氧化硅前体,即稻壳灰(一种农业废料)合成了木薯。我们发现,通过控制溶液中金属与柠檬酸盐的比例和烧成粉末的煅烧温度,可以实现相纯度。发现Li 4 SiO 4粉末(在M / C = 1.4下制备)的粒径为100-200nm,具有低表面积(2m 2 / gm)。发现Li4SiO4粉末可以在低至900oC的温度下烧结,密度约为理论密度的85%。研究了烧结样品的相稳定性。试图使烧结样品的锂损失最小化。对煅烧粉末进行了水分反应性研究和FTIR光谱分析,以找出样品的水分亲和力。从收缩率数据分析了烧结初期的动力学,以找出烧结机理。通过激光闪光法测量的热扩散率。热导率值取决于样品的密度。由于tri扩散与Li4SiO4中的Li +离子电导率有关,因此已使用交流阻抗法来表征烧结样品的电性能。 ud

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    Choudhary Abhisek;

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  • 年度 2012
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