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Least-Squares Fitting Methods for Estimating the Winding Rate in Twisted Magnetic-Flux Tubes

机译:最小二乘拟合法估计扭曲磁通管的缠绕率

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We investigate least-squares fitting methods for estimating the winding rate of field lines about the axis of twisted magnetic-flux tubes. These methods estimate the winding rate by finding the values for a set of parameters that correspond to the minimum of the discrepancy between vector magnetic-field measurements and predictions from a twisted flux-tube model. For the flux-tube model used in the fitting, we assume that the magnetic field is static, axisymmetric, and does not vary in the vertical direction. Using error-free, synthetic vector magnetic-field data constructed with models for twisted magnetic-flux tubes, we test the efficacy of fitting methods at recovering the true winding rate. Furthermore, we demonstrate how assumptions built into the flux-tube models used for the fitting influence the accuracy of the winding-rate estimates. We identify the radial variation of the winding rate within the flux tube as one assumption that can have a significant impact on the winding-rate estimates. We show that the errors caused by making a fixed, incorrect assumption about the radial variation of the winding rate can be largely avoided by fitting directly for the radial variation of the winding rate. Other assumptions that we investigate include the lack of variation of the field in the azimuthal and vertical directions in the magnetic-flux tube model used for the fitting, and the inclination, curvature, and location of the flux-tube axis. When the observed magnetic field deviates substantially from the flux-tube model used for the fitting, we find that the winding-rate estimates can be unreliable. We conclude that the magnetic-flux tube models used in this investigation are probably too simple to yield reliable estimates for the winding rate of the field lines in solar magnetic structures in general, unless additional information is available to justify the choice of flux-tube model used for the fitting.
机译:我们研究了最小二乘拟合方法,用于估计磁场线绕扭曲的磁通管的轴的缠绕率。这些方法通过找到一组参数的值来估算绕组速率,这些参数对应于矢量磁场测量值与来自扭曲磁通管模型的预测之间的最小差异。对于拟合中使用的磁通管模型,我们假设磁场是静态的,轴对称的,并且在垂直方向上没有变化。使用无扭曲的合成矢量磁场数据,该数据由扭曲的磁通管模型构建而成,我们测试了拟合方法在恢复真实绕组速率时的功效。此外,我们演示了用于拟合的磁通量管模型中内置的假设如何影响绕组速率估计的准确性。我们将通量管内绕组速率的径向变化确定为一种可能会对绕组速率估计产生重大影响的假设。我们表明,通过直接拟合绕组速率的径向变化,可以很大程度上避免由于对绕组速率的径向变化做出固定,错误的假设而导致的误差。我们要研究的其他假设包括:在用于装配的磁通管模型中,在方位角和垂直方向上的磁场没有变化,以及磁通量管轴的倾斜度,曲率和位置。当观察到的磁场明显偏离用于拟合的通量管模型时,我们发现绕线速度估计值可能不可靠。我们得出的结论是,除非可利用其他信息来证明选择磁通管模型的合理性,否则本研究中使用的磁通管模型可能太简单了,无法对太阳能磁结构中的场线的绕线率产生可靠的估计。用于装修。

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