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Control of the heavy-ion beam line gas pressure and density in the HYLIFE thick-liquid chamber

机译:HYLIFE浓液室中重离子束线气体压力和密度的控制

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Controlling the density and pressure of the background gas in the beam lines of thick-liquid heavy-ion fusion chambers is of paramount importance for the beams to focus and propagate properly. Additionally, transport and deposition of debris material onto metal beam-tube surfaces may reduce the breakdown voltage and permit arcing with the beam. The strategy to control the gas pressure and the rate of debris deposition is twofold. First, the cool thick-liquid jet structures will mitigate the venting to the beam tubes. The ablation and venting of debris through thick-liquid structures must be modelled to predict the quantities of debris reaching the beam ports. TSUNAMI calculations have been performed to estimate the mass and energy flux histories at the entrance of the beam ports in a 9 x 9 HYLIFE pocket geometry. Secondly, additional renewable shielding will be interposed in the beam tubes themselves. Thick-liquid vortexes are planned to coat the inside of the beam tubes and provide a quasi-continuous protection of the beam-tube walls up to the final focus magnets. A three-component molten salt, flinabe, with a low melting temperature and vapor pressure, has been identified as a candidate liquid for the vortexes. The use of flinabe may actually eliminate the necessity of mechanical shutters to rapidly close the beam tubes after target ignition.
机译:控制浓液体重离子聚变室光束线中背景气体的密度和压力,对于使光束正确聚焦和传播至关重要。另外,碎片材料在金属束管表面上的传输和沉积可能会降低击穿电压并允许与束产生电弧。控制气压和碎屑沉积速率的策略是双重的。首先,较冷的浓稠液体喷射结构将减轻对束管的排放。必须对通过稠密液体结构进行的烧蚀和排放进行建模,以预测到达梁端口的碎屑量。已经进行了TSUNAMI计算,以估计9 x 9 HYLIFE口袋几何形状的梁端口入口处的质量和能量通量历史。其次,将在束管本身中插入额外的可再生屏蔽。计划使用浓稠液体涡流来覆盖束管的内部,并为束管壁直至最终的聚焦磁体提供准连续的保护。具有低熔融温度和蒸气压的三组分熔融盐flinabe已被确定为涡旋的候选液体。使用flinabe实际上可以消除在目标点火后使用机械百叶窗快速关闭束管的必要性。

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