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A simple integral model of buoyancy-generating plumes and its application to volcanic eruption columns

机译:浮力产生羽的简单积分模型及其在火山喷发柱中的应用

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This paper discusses the importance of the increase in buoyancy flux due to thermal expansion of entrained air to clarify the fundamental features of volcanic eruption columns. A one-dimensional steady state model, which is simplified as much as possible, is developed to elucidate the essential differences in behavior between a typical incompressible turbulent plume and an eruption column in which the buoyancy flux significantly increases with height. An analytical solution of a simple form is specifically derived for an idealized axisymmetric turbulent plume of a linearly increasing buoyancy flux in a uniform environment. The solution predicts that the upward velocity of the plume is constant along the height, in contrast to the upward velocity of a common incompressible plume, the velocity of which decreases inversely proportional to the third root of the height. More realistic plumes in both uniform and density-stratified environments are also investigated by modifying the one-dimensional model. The model yields several scaling parameters, some of which are used to estimate the terminal height of an eruption column. Numerical investigations using the parameters indicate that the thermal energy in an eruption column is exhausted for heating and expanding entrained air before reaching the terminal height. Numerical investigations also imply that the buoyancy flux in an eruption column may be less than half of that predicted by the conventional theory of an incompressible plume. The discussion based on the present model also sheds new light on the physical background of the superbuoyant behavior of an eruption column.
机译:本文讨论了由于夹带空气的热膨胀而增加浮力通量的重要性,以阐明火山喷发柱的基本特征。开发了尽可能简化的一维稳态模型,以阐明典型的不可压缩湍流羽流和其中浮力通量随高度显着增加的喷发柱之间在行为上的本质差异。特别是针对在均匀环境中线性增加的浮力通量的理想化的轴对称湍流羽流,推导了一种简单形式的分析解决方案。该解决方案预测,与普通不可压缩羽流的向上速度相反,羽流的向上速度沿高度是恒定的,普通不可压缩羽流的速度与高度的第三根成反比地减小。通过修改一维模型,还研究了在均匀和密度分层环境中更逼真的羽状流。该模型产生几个缩放参数,其中一些用于估计喷发柱的末端高度。使用这些参数进行的数值研究表明,喷出塔中的热能在达到终端高度之前就被用来加热和膨胀夹带的空气。数值研究还暗示,喷发柱中的浮力通量可能小于传统不可压缩羽流理论预测的浮力通量的一半。基于当前模型的讨论也为喷发柱的超浮行为的物理背景提供了新的思路。

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