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首页> 外文期刊>Radio Science >Effects of field line mapping on the gradient-drift instability in the coupled E and F region high-latitude ionosphere
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Effects of field line mapping on the gradient-drift instability in the coupled E and F region high-latitude ionosphere

机译:场线映射对耦合的E和F区高纬电离层中梯度漂移不稳定性的影响

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The linear theory of the gradient drift instability in the E and F region ionosphere, including intraionospheric coupling effects, is developed. It is found that when intraionospheric coupling effects are included the instability onset criteria are modified depending on the ratio of the integrated conductivities in the region of the instability onset to the neighboring altitude regions. New results are found for the growth rates of the gradient-drift instability in (1) the F region with inhomogeneous E region coupling and (2) the E region with inhomogeneous F region coupling. The instability growth rate in the F region case is modified as a function of Q (= ) and P (= ), where ΣPO and ΣHO the equilibrium integrated Pedersen and Hall conductivities respectively, and superscripts E and F refer to the ionospheric regions. For P 1 and Q 1, modes in the F region are modified significantly by the E region coupling effects, whereas in the opposite limit, the usual results for the local stability analysis of the F region gradient drift mode are recovered, especially at small wavelengths. For the E region gradient drift modes, F region coupling effects have an important influence on the instability for Q 1, especially at longer wavelengths, while for Q 1, the instability characteristics are relatively unaffected by the coupling effects. In addition to the well-known reductions to the growth rate proportional to the conductivity ratio of the two regions, we find that the contributions from the inhomogeneous E region (F region) may be destabilizing under certain conditions and may well overshadow the reductions in the growth rate for the instability in the F region (E region). This effect is found especially important for the F region gradient-drift instability. Among the consequences of the coupling on the local instability process, it is found that the unstable modes may show a rotation of the wave vector with respect to the E × B drift, and the growth rate for the instability has a peak as a function of the wavelength. The results are discussed in light of observations of long-wavelength irregularities in the E and F regions.
机译:建立了E和F区域电离层梯度漂移不稳定性的线性理论,包括电离层内耦合效应。已经发现,当包含电离层耦合效应时,将根据不稳定性起始区域中的积分电导率与相邻海拔区域的比率来修改不稳定性起始标准。在(1)具有不均匀E区耦合的F区和(2)具有不均匀F区耦合的E区中,发现了梯度漂移不稳定性的增长率。 F区域的不稳定性增长率根据Q(=)和P(=)的函数进行修改,其中ΣPO和ΣHO分别是平衡积分的Pedersen和Hall电导率,上标E和F表示电离层区域。对于P 1和Q 1,E区域的耦合效应极大地改变了F区域的模式,而在相反的范围内,恢复了F区域梯度漂移模式的局部稳定性分析的通常结果,尤其是在小波长下。对于E区梯度漂移模式,F区耦合效应对Q 1的不稳定性具有重要影响,尤其是在较长波长下,而对于Q 1而言,耦合特性相对不影响不稳定性。除了众所周知的与两个区域的电导率成正比的增长率下降之外,我们发现非均质E区域(F区域)的贡献在某些条件下可能会不稳定,并且可能会大大掩盖F区域(E区域)不稳定的增长率。发现此效应对于F区梯度漂移不稳定性特别重要。在耦合对局部不稳定过程的影响中,发现不稳定模式可能显示出波矢量相对于E×B漂移的旋转,并且不稳定的增长率以峰为函数。波长。根据对E和F区长波不规则现象的观察讨论了结果。

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