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A high field side multifunction launcher with aperture impedance matching for lower hybrid current drive in DIII-D advanced tokamak plasmas

机译:具有孔径阻抗匹配的高场侧多功能发射器,可用于DIII-D高级托卡马克等离子体中的较低混合电流驱动

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A high field side (HFS) lower hybrid current drive launch scenario improves wave accessibility, has single pass damping at r/a similar to 0.6-0.8 and good current drive efficiency in DIII-D advanced tokamak discharges. The DIII-D experiment is an opportunity to validate HFS wave propagation, absorption and scrape-off layer benefits. A HFS multi junction launcher is designed and simulated in COMSOL over a range of plasma edge conditions to evaluate n(parallel to) spectrum, directivity, and return loss. The COMSOL. model utilizes a lossy anisotropic dielectric modeled with the cold plasma dispersion relation cross validated against ALOHA and Petra-M codes. The COMSOL model seamlessly includes a realistic plasma model and coupler that allows for rapid optimization of a single launcher module, while Petra-M allows more complex simulation of an eight-module array including curvature, and warm plasma effects. The resulting design utilizes a traveling wave poloidal power divider to minimize peak electric fields in the vacuum region of the coupler, and an internal aperture matching structure provides an impedance match to the plasma over a wide range of plasma density and density gradient edge conditions.
机译:高场侧(HFS)较低的混合电流驱动发射方案改善了波的可及性,在r / a处的单程阻尼类似于0.6-0.8,并且在DIII-D先进托卡马克放电中具有良好的电流驱动效率。 DIII-D实验是验证HFS波传播,吸收和刮除层优势的机会。在COMSOL中设计并仿真了HFS多结发射器,并在一系列等离子体边缘条件下对其进行了仿真,以评估n(平行)光谱,方向性和回波损耗。 COMSOL。该模型使用了有损各向异性电介质,该电介质具有针对ALOHA和Petra-M代码验证的冷等离子体弥散关系的交叉模型。 COMSOL模型无缝包含现实的等离子体模型和耦合器,可快速优化单个发射器模块,而Petra-M则可对包括曲率和热等离子体效应的八模块阵列进行更复杂的模拟。最终的设计利用行波极性功率分配器来最大程度地减小耦合器真空区域中的峰值电场,并且内部孔径匹配结构可在宽范围的等离子体密度和密度梯度边缘条件下为等离子体提供阻抗匹配。

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