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High Field Side Lower Hybrid Current Drive Simulations for Off- axis Current Drive in DIII-D

机译:DIII-D中偏轴电流驱动的高场侧下部混合电流驱动仿真

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Efficient off-axis current drive scalable to reactors is a key enabling technology for developing economical, steady state tokamak. Previous studies have focussed on high field side (HFS) launch of lower hybrid current drive (LHCD) in double null configurations in reactor grade plasmas and found improved wave penetration and high current drive efficiency with driven current profile peaked near a normalized radius, ρ, of 0.6-0.8, consistent with advanced tokamak scenarios. Further, HFS launch potentially mitigates plasma material interaction and coupling issues. For this work, we sought credible HFS LHCD scenario for DIII-D advanced tokamak discharges through utilizing advanced ray tracing and Fokker Planck simulation tools (GENRAY+CQL3D) constrained by experimental considerations. For a model and existing discharge, HFS LHCD scenarios with excellent wave penetration and current drive were identified. The LHCD is peaked off axis, ρ~0.6-0.8, with FWHM Δρ=0.2 and driven current up to 0.37 MA/MW coupled. For HFS near mid plane launch, wave penetration is excellent and have access to single pass absorption scenarios for variety of plasmas for n_(||)=2.6-3.4. These DIII-D discharge simulations indicate that HFS LHCD has potential to demonstrate efficient off axis current drive and current profile control in DIII-D existing and model discharge.
机译:可扩展至反应堆的高效离轴电流驱动器是开发经济,稳定状态托卡马克的关键使能技术。先前的研究集中于在反应堆级等离子中以双无效配置在较低的混合电流驱动(LHCD)的高场侧(HFS)发射,并发现在驱动电流分布在归一化半径ρ附近达到峰值的情况下,波穿透性和高电流驱动效率得到了改善。为0.6-0.8,与高级托卡马克方案一致。此外,HFS发射有可能减轻等离子体材料的相互作用和耦合问题。对于这项工作,我们通过利用受实验考虑因素约束的先进射线追踪和Fokker Planck模拟工具(GENRAY + CQL3D),寻求DIII-D先进托卡马克排放的可靠HFS LHCD方案。对于模型和现有放电,确定了具有出色的波穿透和电流驱动的HFS LHCD方案。 LHCD的峰值偏离轴ρ〜0.6-0.8,FWHMΔρ= 0.2,驱动电流高达0.37 MA / MW。对于中平面发射附近的HFS,波穿透性极好,并且对于n_(||)= 2.6-3.4的各种等离子体,都可以进入单程吸收方案。这些DIII-D放电模拟表明,HFS LHCD有潜力证明DIII-D现有和模型放电中有效的离轴电流驱动和电流分布控制。

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