利用随机一维湍流模型探索稳定Ekman边界层的分层效应

Q2 Earth and Planetary Sciences Advances in Science and Research Pub Date : 2022-10-25 DOI:10.5194/asr-19-117-2022
M. Klein, H. Schmidt
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引用次数: 2

摘要

摘要由于成本的限制,大气边界层中的小尺度过程通常没有得到解析,而是基于与解析尺度的物理关系进行建模,忽略了昂贵的后向散射。本研究借助一维湍流(ODT)模型解决了这一建模上的不足。ODT作为独立柱模型应用于数值研究长寿命瞬态Ekman流中的分层效应,作为极地边界层的典型例子,通过解析湍流风和波动温度分布在流动的所有相关尺度上。我们首先根据表面阻力定律校准中性情况下的可调模型参数,这在有限低雷诺数和中等雷诺数下产生略有不同的最佳模型设置。对于稳定分层的情况,保持先前校准的参数不变,并将模式预测与各种参考数值模拟和利用边界层相似性的观测结果进行比较。odt合理地捕捉了各种规定分层剖面的临时发展流动,但由于在充分发展的湍流状态中停留的时间较长,未能充分捕捉近地面分层。这表明优先适用于高雷诺数流态。然而,该模型表明,由于尺度选择性浮力阻尼,大的近地表湍流尺度主要受到发展中的分层的影响,这与文献一致。模拟的分层案例集合所代表的风向转角变异性比参考的再分析数据覆盖的范围更大。本研究表明,垂直柱ODT公式在空间和时间上具有高度分辨率,可以帮助准确地表示多物理场边界层和亚网格尺度过程,为分析非常稳定的极地边界层和大气化学应用提供了新的机会。
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Exploring stratification effects in stable Ekman boundary layers using a stochastic one-dimensional turbulence model
Abstract. Small-scale processes in atmospheric boundary layers are typically not resolved due to cost constraints but modeled based on physical relations with the resolved scales, neglecting expensive backscatter. This lack in modeling is addressed in the present study with the aid of the one-dimensional turbulence (ODT) model. ODT is applied as stand-alone column model to numerically investigate stratification effects in long-lived transient Ekman flows as canonical example of polar boundary layers by resolving turbulent winds and fluctuating temperature profiles on all relevant scales of the flow. We first calibrate the adjustable model parameters for neutral cases based on the surface drag law which yields slightly different optimal model set-ups for finite low and moderate Reynolds numbers. For the stably stratified cases, previously calibrated parameters are kept fixed and the model predictions are compared with various reference numerical simulations and also observations by an exploitation of boundary layer similarity. ODT reasonably captures the temporally developing flow for various prescribed stratification profiles, but fails to fully capture the near-surface laminarization by remaining longer in a fully developed turbulent state, which suggests preferential applicability to high-Reynolds-number flow regimes. Nevertheless, the model suggests that large near-surface turbulence scales are primarily affected by the developing stratification due to scale-selective buoyancy damping which agrees with the literature. The variability of the wind-turning angle represented by the ensemble of stratified cases simulated covers a wider range than reference reanalysis data. The present study suggests that the vertical-column ODT formulation that is highly resolved in space and time can help to accurately represent multi-physics boundary-layer and subgrid-scale processes, offering new opportunities for analysis of very stable polar boundary layer and atmospheric chemistry applications.
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来源期刊
Advances in Science and Research
Advances in Science and Research Earth and Planetary Sciences-Geophysics
CiteScore
4.10
自引率
0.00%
发文量
13
审稿时长
22 weeks
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