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Analysis methods for multi-component wave measurements on board the DEMETER spacecraft

机译:在DEMETER航天器上进行多分量波测量的分析方法

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We describe analysis methods to estimate parameters of electromagnetic waves based on the multi-component measurements of the DEMETER spacecraft. Using the fact that the wave magnetic field is perpendicular to the wave vector, the wave normal direction can be estimated by different methods. We use these plane-wave estimates to interpret measurements of the observed wave emissions. For instance, we use the recently developed singular value decomposition (SVD) technique. The results of the plane-wave analysis have an advantage that they often allow a straightforward interpretation. These different methods have been successfully tested with the data of previous spacecraft. All these methods are also implemented in the analysis tools designed for the analysis of the DEMETER wave measurements. We show the first results of these analysis techniques for different types of wave emissions observed on board DEMETER. Obliquely propagating right-hand polarized electromagnetic waves at a few hundreds of Hz are usually connected with a multi-ion mode structure below the local proton cyclotron frequency and with a sharp lower cutoff of left-hand polarized waves, as well as with right-hand polarized waves tunelling below the multi-ion cross-over frequency. Electron and proton whistlers are also very frequently observed on DEMETER. An unusual narrow-band emission at 140 Hz (well below the local proton cyclotron frequency) serves us as another case for a detailed analysis. We find that these waves are right-hand polarized and obliquely propagating. Using this example case, we also present analysis methods to estimate continuous distribution of wave energy density as a function of wave vector directions. These techniques of wave distribution function (WDF) analysis need both wave and particle measurements. In the analyzed case, two different methods of WDF analysis give similar results consistent with the results of the plane-wave techniques. To identify the source region we use the backward ray-tracing method. The wave normal direction obtained by the analysis of multi-component data is used for a simulation of wave propagation from the point of measurement. By this procedure, we obtain an inverse trajectory of the wave ray. We can thus follow the ray path back to the anticipated source region which is in our case located a few degrees of latitude to the South from the spacecraft position.
机译:我们描述了基于DEMETER航天器的多分量测量来估计电磁波参数的分析方法。利用波磁场垂直于波矢量的事实,可以通过不同的方法估算波法线方向。我们使用这些平面波估计来解释观测到的波发射的测量结果。例如,我们使用最近开发的奇异值分解(SVD)技术。平面波分析的结果具有一个优点,即它们通常允许直接解释。这些不同的方法已经用以前的航天器的数据成功地进行了测试。所有这些方法也都在设计用于DEMETER波测量分析的分析工具中实现。我们显示了在DEMETER板上观察到的针对不同类型的波发射的这些分析技术的第一个结果。几百赫兹的斜向传播的右旋极化电磁波通常与本地质子回旋加速器频率以下的多离子模式结构以及左旋极化波以及右旋极化波的急剧下降相连接在多离子交叉频率以下调谐的极化波。在DEMETER上也经常观察到电子和质子哨子。 140 Hz(远低于当地质子回旋加速器频率)的异常窄带发射是我们进行详细分析的另一种情况。我们发现这些波是右旋极化和倾斜传播的。使用此示例案例,我们还提出了分析方法,以估计作为波矢量方向函数的波能量密度的连续分布。这些波分布函数(WDF)分析技术既需要测量波又需要测量粒子。在分析的情况下,WDF分析的两种不同方法给出的结果与平面波技术的结果一致。为了确定源区域,我们使用后向光线跟踪方法。通过对多分量数据的分析获得的波法线方向用于从测量角度模拟波传播。通过此过程,我们获得了射线的反轨迹。因此,我们可以沿着射线路径返回到预期的源区域,在我们的案例中,该源区域位于从航天器位置向南数纬度的位置。

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