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Validation of full-f global gyrokinetic modeling results against the FT-2 tokamak Doppler reflectometry data using synthetic diagnostics

机译:使用合成诊断工具对FT-2托卡马克多普勒反射仪数据验证全f全局动力学模型结果

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Two versions of the X-mode Doppler reflectometry (DR) synthetic diagnostics are developed within the framework of the ELMFIRE global gyrokinetic modeling of the FT-2 tokamak ohmic discharge. In the 'fast' version the DR signal is computed in the linear theory approximation using the reciprocity theorem, utilizing the probing wave field pattern provided by computation and taking into account the 2D plasma inhomogeneity effects; whereas the alternative 'slow' version DR synthetic diagnostic is based on the full-wave code IPF-FD3D describing the probing and scattered wave propagation in turbulent plasma. The DR signal frequency spectra and the dependence of their frequency shift, width and shape on the probing antenna position are computed and shown to be similar to those measured in the high-field side probing DR experiment at the FT-2 tokamak. The geodesic acoustic mode characteristics provided by the measurements and by the synthetic DR are close within a 12% accuracy. However, a substantial difference was found in the decay of the DR signal cross-correlation functions with growing frequency shift in the probing wave channels. The quick decrease in the radial correlation DR coherence observed in the experiment and full-wave synthetic diagnostic, compared to the fast synthetic DR, is attributed to the nonlinear effect of the probing wave phase modulation by the turbulence in the former two cases. The variation in the DR signal at a growing incidence angle in the experiment is also shown to be slower than predicted by both of the synthetic diagnostics, presumably due to underestimation of the probing wave phase modulation and consequent nonlinear saturation of the DR signal at lower incidence angles in modeling.
机译:在FT-2托卡马克欧姆放电的ELMFIRE全球陀螺动力学模型的框架内,开发了两种版本的X模式多普勒反射法(DR)综合诊断程序。在“快速”版本中,DR信号是使用互易定理,通过计算提供的探测波场模式并考虑二维等离子体不均匀性影响,以线性理论近似计算的;而替代的“慢速”版本DR合成诊断基于全波代码IPF-FD3D,该代码描述了湍流等离子体中的探测和散射波传播。计算出DR信号频谱及其频移,宽度和形状对探测天线位置的依赖性,显示出与在FT-2托卡马克上进行的高场侧探测DR实验中测量的相类似。由测量和合成DR提供的测地线声模特性在12%的精度内接近。然而,发现DR信号互相关函数的衰减随探测波通道中频移的增加而存在很大差异。与快速合成DR相比,在实验和全波合成诊断中观察到的径向相关DR相干性的快速下降归因于前两种情况中湍流对探测波相位调制的非线性影响。实验中DR信号在入射角增大时的变化也显示出比两种综合诊断方法所预测的要慢,这可能是由于探测波相位调制的低估以及因此DR信号在较低入射率下的非线性饱和所致建模中的角度。

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