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Spatial reduction algorithm for atmospheric chemical transport models

机译:大气化学迁移模型的空间缩减算法

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摘要

Numerical modeling of global atmospheric chemical dynamics presents an enormous challenge, associated with simulating hundreds of chemical species with time scales varying from milliseconds to years. Here we present an algorithm that provides a significant reduction in computational cost. Because most of the fast reactants and their quickly decomposing reaction products are localized near emission sources, we use a series of reduced chemical models of decreasing complexity with increasing distance from the source. The algorithm diagnoses the chemical dynamics on-the-run, locally and separately for every species according to its characteristic reaction time. Unlike conventional time-scale separation methods, the spatial reduction algorithm speeds up not only the chemical solver but also advection–diffusion integration. Through several examples we demonstrate that the algorithm can reduce computational cost by at least an order of magnitude for typical atmospheric chemical kinetic mechanisms.
机译:全球大气化学动力学的数值建模提出了巨大的挑战,与模拟数百种化学物质有关,时间尺度从毫秒到几年不等。在这里,我们提出了一种算法,可以显着降低计算成本。由于大多数快速反应物及其快速分解的反应产物都位于排放源附近,因此我们使用了一系列简化的化学模型,这些模型的复杂性随着与排放源距离的增加而降低。该算法根据特征物种的反应时间,针对每种物种在运行时,局部和单独地诊断化学动力学。与传统的时标分离方法不同,空间缩减算法不仅可以加快化学求解器的速度,而且还可以加快对流扩散的集成速度。通过几个例子,我们证明了该算法可以将典型大气化学动力学机制的计算成本至少降低一个数量级。

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