论文标题
各向同性缩放特征在太阳风湍流中以固定背景字段进行
Isotropic Scaling Features Measured Locally in the Solar Wind Turbulence with Stationary Background Field
论文作者
论文摘要
缩放各向异性对于解释太阳风湍流中的非线性相互作用至关重要。先前的观察结果提供了不同的结果,据报道,结构函数分析是一种基于局部磁场的缩放各向异性的方法。但是,相对于局部背景磁场的采样角度测定要求平均观察到的时间序列是时间固定的。是否尚未研究此所需的时间平稳性与测量值兼容。在这里,我们利用二阶结构函数方法来研究具有时间固定背景字段的缩放各向异性。我们分析了88个快速太阳风间隔,其时间持续时间大于2005- 2018年的风航天器测量的时间大于2天。我们将局部磁场计算为时间序列B的平均值,其时间平稳性通过小于10度的标准实现了时间序列(PHI是将B切成两个半部分后两个平均磁场之间的角度)。我们首次发现磁性跟踪结构的各向同性缩放特征分别具有缩放指数-0.63 pm 0.08和-0.70 pm 0.04,局部磁场平行于局部磁场并行垂直于太阳风速速度方向。速度跟踪结构函数的缩放尺度也是各向同性的,指数为-0.47 pm 0.10和-0.51 pm 0.09。我们还发现,随着PHI阈值增加到90度,磁性跟踪结构在平行方向上的缩放指标降低至-0.81,而磁场和太阳能速度之间的瞬时角度的RMS在时间尺度150 s处最高为45DEG,表明量表的混合量表量表量很大。
The scaling anisotropy is crucial to interpret the nonlinear interactions in solar wind turbulence. Previous observations provide diverse results and the structure function analyses are also reported to be an approach to investigate the scaling anisotropy based on a local magnetic field. However, the determination of the sampling angle with respect to the local background magnetic field requires that the observed time series for the average are time stationary. Whether or not this required time stationarity is compatible with the measurements has not been investigated. Here we utilize the second-order structure function method to study the scaling anisotropy with a time-stationary background field.We analyze 88 fast solar wind intervals each with time durations larger than 2 days measured by WIND spacecraft in the period 2005-2018. We calculate the local magnetic field as the average of the time series B whose time stationarity is fulfilled by our criterion phi smaller than 10 deg (phi is the angle between the two averaged magnetic fields after cutting B into two halves). We find for the first time the isotropic scaling feature of the magnetic-trace structure functions with scaling indices -0.63 pm 0.08 and -0.70 pm 0.04, respectively, with the local magnetic field parallel and perpendicular to the solar wind velocity directions. The scaling for the velocity-trace structure functions is also isotropic and the indices are -0.47 pm 0.10 and -0.51 pm 0.09. We also find that with increasing phi threshold to 90 deg, the scaling index of the magnetic-trace structure function in the parallel direction decreases to -0.81, while the rms of the instantaneous angle between magnetic field and solar wind velocity increases up to 45deg at the timescale 150 s, indicating a mix of perpendicular measurements into parallel ones at large scales.