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The Inertialized Rice Convection Model

机译:Inertialized水稻对流模型

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The Rice Convection Model (RCM) is an established first‐principles physics model in which the field‐aligned current density is computed by the Vasyliunas equation. Its slow‐flow assumption neglects the inertial term in the MHD momentum equation, which is a major obstacle to using the RCM to model some of the fluid dynamics of bursty bulk flows in the plasma sheet. This paper describes the RCM‐I, which represents an effort to approximately add inertial effects in the RCM by correcting the expression for field‐aligned currents. That inertial current is calculated under the assumption that the mass on each field line is concentrated near the equatorial plane. RCM‐I results are presented with magnetic fields calculated in two different ways: A static statistics‐based model and an MHD code. In both cases, the bubble flow velocities are much smaller and more realistic than those calculated from the traditional RCM. An additional promising feature is that the injection of a low‐entropy bubble produces interchange (braking) oscillations and buoyancy waves that radiate away from the original bubble, forming multiple flow vortices. None of these features could be produced by traditional RCM simulations. Comparison simulations also suggest that gradient and curvature drifts have substantial effect on oscillation of bubbles and tend to damp buoyancy waves. We also note that substantial work will be needed in the future to further improve the pressure distribution by inertializing an anisotropic version of the RCM and to understand the effects of neglecting the magnetosphere‐ionosphere communication time.
机译:米饭(RCM)是一种建立对流模型第一优先原则的物理模型电流密度计算的场量一致Vasyliunas方程。忽略惯性项的磁流体动力的动力使用方程,这是一个主要障碍RCM模型的流体动力学丛发性散装流浆板。描述了RCM高我代表一个努力RCM大约增加惯性效应通过修正的表达式字段一致电流。假设每个字段的质量行集中在赤道平面附近。RCM我结果与磁场计算两种不同的方式:静态的基于统计量的模型和一个磁铃代码。情况下,气泡流速度是多少更小、更现实的比计算从传统RCM。功能是一个低熵的注入泡沫产生的交换(制动)振荡和浮力电波辐射掉从最初的泡沫,形成多个流漩涡。由传统RCM模拟。比较模拟还表明,梯度和曲率漂移有实质性的影响振荡的泡沫和倾向于潮湿的浮力波。在未来需要进一步改善通过inertializing压力分布各向异性版本的RCM和理解忽视的影响磁气圈的时间电离层传播。

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