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首页> 外文期刊>Geophysical Research Letters >Feedback effects of variable thermal conductivity on the cold downwellings in high Rayleigh number convection
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Feedback effects of variable thermal conductivity on the cold downwellings in high Rayleigh number convection

机译:高瑞利对流中可变热导率对冷下流的反馈效应

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摘要

The thermal structure of the vertical boundary layers in mantle convection can be seriously influenced by the phonon contribution of the thermal conductivity because of its decreasing nonlinear dependence with increasing temperature. Such a dependence would induce the cold descending slabs to be considerably warmer than the canonical models with constant conductivity. We have carried out both 2-D and 3-D convection calculations, using a temperature and pressure-dependent thermal conductivity with a jump at 670 km depth. In order to determine the influence of advection in counteracting the nonlinear thermal diffusion, we have gone up to a Rayleigh number of 7 x 10(6) for a constant viscosity model with variable conductivity. Our comparison shows unequivocally that the cold downwellings with a high conductivity are disappearing to a greater degree in the lower mantle at depths of around 1500 to 2000 km than models with constant conductivity. This divergence in the visibility of cold downwellings increases with larger Rayleigh numbers, because of the negative feedback nature of the nonlinear dependence in the temperature-dependent conductivity. Our results would suggest that many cold slabs sinking through the lower mantle with a realistic conductivity would become thermally assimilated in the bottom 1000 km of the mantle. [References: 12]
机译:地幔对流中垂直边界层的热结构可能会受到热导率的声子贡献的严重影响,因为它随温度的升高而降低了非线性依赖性。这种依赖性将导致冷降平板比具有恒定电导率的规范模型要温暖得多。我们使用与温度和压力有关的热导率进行了670 km深度的跃迁,从而进行了2-D和3-D对流计算。为了确定平流对抵消非线性热扩散的影响,对于电导率可变的恒定粘度模型,我们将瑞利数提高到7 x 10(6)。我们的比较清楚地表明,与电导率恒定的模型相比,电导率高的冷流在下地幔中约1500至2000 km处的消失程度更大。由于较大的瑞利数,冷下行流的能见度之间的这种差异增加了,这是因为与温度相关的电导率的非线性相关性具有负反馈性质。我们的结果表明,许多下沉的地幔板以实际的传导性沉入下地幔,在地幔底部1000公里处会被热吸收。 [参考:12]

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