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首页> 外文期刊>The Astrophysical journal >A COMPREHENSIVE METHOD OF ESTIMATING ELECTRIC FIELDS FROM VECTOR MAGNETIC FIELD AND DOPPLER MEASUREMENTS
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A COMPREHENSIVE METHOD OF ESTIMATING ELECTRIC FIELDS FROM VECTOR MAGNETIC FIELD AND DOPPLER MEASUREMENTS

机译:从矢量磁场和多普勒测量估计电场的综合方法

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Photospheric electric fields, estimated from sequences of vector magnetic field and Doppler measurements, can be used to estimate the flux of magnetic energy (the Poynting flux) into the corona and as time-dependent boundary conditions for dynamic models of the coronal magnetic field. We have modified and extended an existing method to estimate photospheric electric fields that combines a poloidal-toroidal decomposition (PTD) of the evolving magnetic field vector with Doppler and horizontal plasma velocities. Our current, more comprehensive method, which we dub the "PTD-Doppler-FLCT Ideal" (PDFI) technique, can now incorporate Doppler velocities from non-normal viewing angles. It uses the FISHPACK software package to solve several two-dimensional Poisson equations, a faster and more robust approach than our previous implementations. Here, we describe systematic, quantitative tests of the accuracy and robustness of the PDFI technique using synthetic data from anelastic MHD (ANMHD) simulations, which have been used in similar tests in the past. We find that the PDFI method has less than 1% error in the total Poynting flux and a 10% error in the helicity flux rate at a normal viewing angle (θ = 0) and less than 25% and 10% errors, respectively, at large viewing angles (θ 60°). We compare our results with other inversion methods at zero viewing angle and find that our method's estimates of the fluxes of magnetic energy and helicity are comparable to or more accurate than other methods. We also discuss the limitations of the PDFI method and its uncertainties.
机译:根据矢量磁场和多普勒测量的顺序估算出的光球电场可用于估算进入电晕的磁能通量(Poynting通量),并可作为时变边界条件用于日冕磁场的动态模型。我们已经修改并扩展了一种现有的估算光球电场的方法,该方法结合了不断发展的磁场矢量的多极环形分解(PTD)与多普勒和水平等离子体速度。我们称为“ PTD-多普勒-FLCT理想”(PDFI)技术的当前更全面的方法,现在可以从非正常视角合并多普勒速度。它使用FISHPACK软件包来求解几个二维Poisson方程,这是比我们以前的实现方法更快,更可靠的方法。在这里,我们描述了使用来自非弹性MHD(ANMHD)模拟的合成数据对PDFI技术的准确性和鲁棒性进行的系统,定量测试,该模拟数据过去已用于类似的测试中。我们发现,在正常视角(θ= 0)下,PDFI方法的总Poynting通量误差小于1%,螺旋通量率误差为10%,而在200°C时,分别小于25%和10%大视角(θ<60°)。我们在零视角下将我们的结果与其他反演方法进行了比较,发现我们的方法对磁能和螺旋线通量的估计与其他方法相当或更为准确。我们还将讨论PDFI方法的局限性及其不确定性。

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