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Continuous and scalable polymer capsule processing for inertial fusion energy target shell fabrication using droplet microfluidics

机译:连续和可扩展的聚合物胶囊工艺用于使用微滴微流体制造惯性聚变能靶壳

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摘要

High specification, polymer capsules, to produce inertial fusion energy targets, were continuously fabricated using surfactant-free, inertial centralisation, and ultrafast polymerisation, in a scalable flow reactor. Laser-driven, inertial confinement fusion depends upon the interaction of high-energy lasers and hydrogen isotopes, contained within small, spherical and concentric target shells, causing a nuclear fusion reaction at ~150 M°C. Potentially, targets will be consumed at ~1 M per day per reactor, demanding a 5000x unit cost reduction to ~$0.20, and is a critical, key challenge. Experimentally, double emulsions were used as templates for capsule-shells, and were formed at 20 Hz, on a fluidic chip. Droplets were centralised in a dynamic flow, and their shapes both evaluated, and mathematically modeled, before subsequent shell solidification. The shells were photo-cured individually, on-the-fly, with precisely-actuated, millisecond-length (70 ms), uniform-intensity UV pulses, delivered through eight, radially orchestrated light-pipes. The near 100% yield rate of uniform shells had a minimum 99.0% concentricity and sphericity, and the solidification processing period was significantly reduced, over conventional batch methods. The data suggest the new possibility of a continuous, on-the-fly, IFE target fabrication process, employing sequential processing operations within a continuous enclosed duct system, which may include cryogenic fuel-filling, and shell curing, to produce ready-to-use IFE targets.
机译:在无级流动反应器中,使用无表面活性剂,惯性集中和超快聚合连续制造可产生惯性聚能目标的高规格聚合物胶囊。激光驱动的惯性约束聚变取决于小,球形和同心的目标壳中所含的高能激光与氢同位素的相互作用,从而在约150 M°C的温度下引起核聚变反应。每个反应堆每天可能消耗约1μM的目标,要求将5000倍的单位成本降低到约0.20美元,这是一个关键的关键挑战。实验上,将双乳状液用作胶囊壳的模板,并以20 Hz的频率在流体芯片上形成。液滴在动态流中集中,然后对其形状进行评估和数学建模,然后再进行壳体固化。分别通过八个径向排列的光导管,通过精确驱动的毫秒长度(70µms),强度均匀的紫外线脉冲,分别对壳进行即时的光固化。与常规分批方法相比,均匀壳的接近100%的产率具有至少99.0%的同心度和球形度,并且显着缩短了固化过程。数据表明,在连续封闭的管道系统内采用顺序处理操作(包括低温燃料填充和外壳固化)以产生现成的,连续的,即时的IFE目标制造工艺的新可能性。使用IFE目标。

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