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Reducing Effective Liquid Wall Thickness in a HYLIFE-Ⅱ Fusion Breeder

机译:降低HYLIFE-Ⅱ融合育种机的有效液壁厚度

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One of the major inertial fusion energy reactor designs is HYLIFE-Ⅱ which uses protective flowing liquid wall between fusion plasma and solid first wall. The most attractive aspect of this reactor is that protective liquid wall eliminates the frequent replacement of the first wall structure during reactor lifetime. Liquid wall thickness must be at least the thickness required for supplying sufficient tritium for the deuterium-tritium (DT) driver and satisfying radiation damage on the first wall below the limits. Reducing this thickness results less pumping power requirements and cost of electricity. In this study, investigation on potential of utilizing refractory alloys (W-5Re, TZM and Nb-1Zr) as first wall to reduce effective liquid wall thickness in HYLIFE-Ⅱ reactor using liquid wall of Flibe + 10 mol % UF_4 mixture. Neutron transport calculations were carried out with the help of the SCALE4.3 system by solving the Boltzmann transport equation with the XSDRNPM code in 238 neutron groups and a S_8-P_3 approximation. Numerical results showed that using W-5Re or TZM as first wall was effective in decreasing liquid wall thickness in contrast to Nb-1Zr.
机译:HYLIFE-Ⅱ是惯性聚变能反应堆的主要设计之一,它在聚变等离子体和固体第一壁之间使用了保护性流动壁。该反应器最吸引人的方面是,保护性液体壁消除了在反应器使用寿命期间频繁更换第一壁结构的麻烦。液体壁的厚度必须至少为为氘-((DT)驱动器提供足够的and并满足第一壁以下的辐射损伤所需的厚度。减小该厚度导致较少的泵浦功率需求和电成本。在这项研究中,利用氟利昂+ 10 mol%UF_4混合液的液壁,在HYLIFE-Ⅱ反应器中利用耐火合金(W-5Re,TZM和Nb-1Zr)作为第一层降低有效液壁厚度的潜力的研究。借助于SCALE4.3系统,通过使用XSDRNPM代码对238个中子组和S_8-P_3近似值求解玻尔兹曼输运方程,进行了中子输运计算。数值结果表明,与Nb-1Zr相比,使用W-5Re或TZM作为第一壁可有效减小液体壁厚。

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