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Experimental Characterization and Modeling of Non-linear Coupling of the LHCD Power on Tore Supra

机译:LHCD电力对撕裂的实验表征及非线性耦合的建模

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To achieve steady state operation on future tokamaks, in particular on ITER, the unique capability of a LHCD system to efficiently drive off-axis non-inductive current is needed. In this context, it is of prime importance to study and master the coupling of LH wave to the core plasma at high power density (tens of MW/m2). In some specific conditions, deleterious effects on the LHCD coupling are sometimes observed on Tore Supra. At high power the waves may modify the edge parameters that change the wave coupling properties in a non-linear manner. In this way, dedicated LHCD experiments have been performed using the LHCD system of Tore Supra, composed of two different conceptual designs of launcher: the Fully Active Multijunction (FAM) and the new Passive Active Multijunction (PAM) antennas. A nonlinear interaction between the electron density and the electric field has been characterized in a thin plasma layer in front of the two LHCD antennas. The resulting dependence of the power reflection coefficient with the LHCD power, leading occasionally to trips in the output power, is not predicted by the standard linear theory of the LH wave coupling. Therefore, it is important to investigate and understand the possible origin of such non-linear effects in order to avoid their possible deleterious consequences. The PICCOLO-2D code, which self-consistently treats the wave propagation in the antenna vicinity and its interaction with the local edge plasma density, is used to simulate Tore Supra discharges. The simulation reproduces very well the occurrence of a non-linear behavior in the coupling observed in the LHCD experiments. The important differences and trends between the FAM and the PAM antennas, especially a larger increase in RC for the FAM, are also reproduced by the PICCOLO-2D simulation. The working hypothesis of the contribution of the ponderomotive effect in the non-linear observations of LHCD coupling is therefore validated through this comprehensive modeling for the first time on the FAM and PAM antennas on Tore Supra.
机译:为了实现未来Tokamaks的稳态运行,特别是在ITER上,需要LHCD系统的独特能力,以有效地驱动轴外非感应电流。在这种情况下,研究和掌握LH波的耦合到高功率密度(几十Mw / m2)是一种初始重要的。在一些特定条件下,有时会在撕裂上观察对LHCD偶联的有害影响。在高功率下,波可以修改以非线性方式改变波耦合特性的边缘参数。通过这种方式,使用TORE Supra的LHCD系统进行了专用的LHCD实验,由发射器两种不同的概念设计组成:完全有源多结(FAM)和新的被动活动多结(PAM)天线。电子密度和电场之间的非线性相互作用已经表征在两个LHCD天线前面的薄等离子体层中。通过LH波耦合的标准线性理论,不预先预测电力反射系数与LHCD功率的依赖于LHCD功率的依赖性。因此,重要的是要调查和理解这种非线性效应的可能起源,以避免其可能的有害后果。自始终处理天线附近的波传播的Piccolo-2D代码及其与局部边缘等离子体密度的相互作用,用于模拟撕裂Supra放电。模拟再现在LHCD实验中观察到的耦合中的非线性行为的发生。通过Piccolo-2D模拟还将FAM和PAM天线之间的重要差异和趋势,尤其是RC的较大增加,也是通过Piccolo-2D模拟来复制的。因此,通过这一综合建模在TORE同上的FAM和PAM天线上的第一次综合建模验证了对LHCD耦合的非线性观测中的思考效果的贡献的工作假设。

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