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Optimal Design of a Grid-Cathode Structure in a Spherically Convergent Beam Fusion Device by Response-Surface Methodology Combined With Experimental Design

机译:响应面法结合实验设计的球形会聚束融合装置网格-阴极结构的优化设计

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摘要

To apply fusion energy through a spherically convergent beam fusion (SCBF) device as a portable neutron source, neutron production is very important. The rate of production is greatly dependent upon the ion current, which is closely related to the potential-well structure within a grid cathode. In this paper, we propose a design method by varying the cathode-ring sizes to produce an optimal grid-cathode structure in an SCBF device. The optimization is based on response-surface methodology (RSM); however, full factorial design is also applied to increase the precision of optimization and reduce experiment iteration in the application of RSM. The finite-element method, combined with the flux-corrected transport algorithm, is employed to calculate the ion current. From the optimized model, a higher ion current is calculated, resulting in a deeper potential well.
机译:为了通过球形会聚束聚变(SCBF)设备施加聚变能作为便携式中子源,中子产生非常重要。生产率很大程度上取决于离子电流,该离子电流与栅极中的势阱结构密切相关。在本文中,我们提出了一种通过改变阴极环尺寸以在SCBF器件中产生最佳栅极-阴极结构的设计方法。优化基于响应面方法(RSM);然而,在RSM的应用中,全因子设计也可用于提高优化的精度并减少实验迭代。将有限元方法与通量校正的输运算法相结合来计算离子电流。根据优化的模型,可以计算出更高的离子电流,从而获得更深的势阱。

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