通过非线性波模耦合产生150千米回波

William J Longley
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引用次数: 0

摘要

湍流的一个基本问题是理解能量如何在多个尺度上级联。本文提出了一种新的弱湍流理论来解释能量如何从Langmuir波和上混合波(~10 MHz频率,20 cm波长)转移到离子声波(~kHz频率,3 m波长)。采用动力学方法对静电玻尔兹曼方程进行傅里叶-拉普拉斯变换,并保留非线性项。这种方法的一个独特之处在于能够计算低频下的功率谱,适用于任何波长或角度的磁场。这一理论的结果解释了150公里的回声是如何在电离层中产生的。首先,超热电子速度分布的峰值驱动了类似尾部碰撞的不稳定性。这种不稳定性激发了上混合模式,非线性模式耦合理论表明,不稳定性产生了~10 dB的离子声模式增强,与150 km回波观测到的增强相匹配。
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The generation of 150 km echoes through nonlinear wave mode coupling
A fundamental problem in turbulence is understanding how energy cascades across multiple scales. In this paper, a new weak turbulence theory is developed to explain how energy can be transferred from Langmuir and Upper-Hybrid waves (~10 MHz frequencies, 20-cm wavelengths) to ion-acoustic waves (~kHz frequencies, 3-meter wavelengths). A kinetic approach is used where the electrostatic Boltzmann equations are Fourier-Laplace transformed, and the nonlinear term is retained. A unique feature of this approach is the ability to calculate power spectra at low frequencies, for any wavelength or angle to the magnetic field. The results of this theory explain how 150-km echoes are generated in the ionosphere. First, peaks in the suprathermal electron velocity distribution drive a bump-on-tail like instability. This instability excites the Upper-Hybrid mode, and the nonlinear mode coupling theory shows that the instability generates a ~10 dB enhancement of the ion-acoustic mode: matching the observed enhancement in 150-km echoes.
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