真空磁场区对托卡马克等离子体中紧凑磁环轨迹的影响

Qi Dong, Jie Zhang, Tao Lan, C. Xiao, Zhuang Ge, Chen Chen, Yongkang Zhou, Jie Wu, T. Long, Lin Nie, Pengcheng Lu, Tianxiong Wang, Jiaren Wu, Peng Deng, Xingkang Wang, Zeqi Bai, Yuhua Huang, Jie Li, Lie Xue, Yolbarsop Adil, W. Mao, Chu Zhou, A. Liu, Zhengwei Wu, Jinlin Xie, Weixing Ding, Wandong Liu, Wei Chen, Wulyu Zhong, Min Xu, Xuru Duan
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摘要

紧凑环(CT)在托卡马克放电中的轨迹对燃料至关重要。在这项研究中,我们开发了一个具有真空磁场区域的穿透模型,以准确确定托卡马克放电中的 CT 轨迹。通过在 HL-2A 和 ITER 托卡马克中应用垂直和切线注入方案,该模型被用来计算 CT 注入的轨迹和穿透参数。对于从外侧沿托卡马克主半径方向垂直注入的情况,与不考虑真空磁场区域的情况相比,具有相同注入参数的 CT 在注入 HL-2A 时的相对穿透深度减少了 0.08,而注入 ITER 几何体时则减少了 0.13。此外,我们还提出了一种确定 CT 初始注入速度的优化方法,以精确计算托卡马克中心燃料注入的 CT 初始注入速度。此外,本文还讨论了将 CT 切向注入托卡马克放电的方案。通过数值模拟确定了向 HL-2A 和 ITER 注入 CT 的最佳注入角度和 CT 磁矩方向。最后,通过优化注入热核聚变实验堆的 CT 的注入角度,CT 穿透热核聚变实验堆真空磁场区域时产生的动能损失减少了 ΔEk=975.08J。这些结果为优化聚变实验中的注入角提供了宝贵的启示。我们的模型接近实际实验场景,有助于 CT 参数的设计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effects of vacuum magnetic field region on the compact torus trajectory in a tokamak plasma
The trajectory of the compact torus (CT) within a tokamak discharge is crucial to fueling. In this study, we developed a penetration model with a vacuum magnetic field region to accurately determine CT trajectories in tokamak discharges. This model was used to calculate the trajectory and penetration parameters of CT injections by applying both perpendicular and tangential injection schemes in both HL-2A and ITER tokamaks. For perpendicular injection along the tokamak's major radius direction from the outboard, CTs with the same injection parameters exhibited an 0.08 reduction in relative penetration depth when injected into HL-2A and a 0.13 reduction when injected into ITER geometry when considering the vacuum magnetic field region compared with cases where this region was not considered. In addition, we proposed an optimization method for determining the CT's initial injection velocity to accurately calculate the initial injection velocity of CTs for central fueling in tokamaks. Furthermore, this paper discusses schemes for the tangential injection of CT into tokamak discharges. The optimal injection angle and CT magnetic moment direction for injection into both HL-2A and ITER were determined through numerical simulations. Finally, the kinetic energy loss occurring when the CT penetrated the vacuum magnetic field region in ITER was reduced by ΔEk=975.08J by optimizing the injection angle for the CT injected into ITER. These results provided valuable insights for optimizing injection angles in fusion experiments. Our model closely represents actual experimental scenarios and can assist the design of CT parameters.
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