森林边缘湍流特征:树冠周围涡度预算分析

IF 5.7 1区 农林科学 Q1 AGRONOMY
Dorianis M. Perez , Jesse M. Canfield , Rodman R. Linn , Kevin Speer
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引用次数: 0

摘要

涡度是决定野火行为、锋面演化和风冠相互作用的气流模式的关键特征。研究涡度在植被周围流场中的作用有助于我们更好地理解火-气反馈以及植被对这种反馈的影响。在涡度建模中,“也许最大的知识差距存在于理解涡度方程中哪些项占主导地位……(以及)当其中一个或另一个可能占主导地位时”(波特,2012)。在这项研究中,我们利用HIGRAD/FIRETEC(一个三维、两相输运模型,可以保存质量、动量、能量和化学物质)研究涡度在边界层动力学和林冠/森林边缘效应中的作用。导出了涡度输运方程,并将其离散化。模拟是在被地表植被包围的立方体均匀冠层上进行的。这一推导导致了阻力倾斜和拉伸项的发现,这表明植被气动阻力的梯度与表面积体积比的非均质性有关,在涡度的产生中起着重要作用。涡度预算分析结果表明,在这些梯度存在的区域,即冠层边缘,阻力倾斜和拉伸项的贡献很大。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Characterizing turbulence at a forest edge: A vorticity budget analysis around a canopy
Vorticity is a key characteristic of flow patterns that determine wildland fire behavior, frontal evolution, and wind-canopy interaction. Investigating the role of vorticity in the flow fields around vegetation can help us better understand fire-atmosphere feedback and the influences of vegetation on this feedback. In modeling vorticity, “perhaps the greatest knowledge gap exists in understanding which terms in the vorticity equation dominate [...] (and) when one or the other might dominate” (Potter, 2012). In this study, we investigate the role of vorticity in boundary layer dynamics and canopy/forest edge effects using HIGRAD/FIRETEC, a three-dimensional, two-phase transport model that conserves mass, momentum, energy, and chemical species. A vorticity transport equation was derived and discretized. Simulations were performed over a cuboidal homogeneous canopy surrounded by surface vegetation. This derivation led to the discovery of a drag tilting and stretching term, which shows that gradients in the aerodynamic drag of the vegetation, tied to heterogeneities in surface area-to-volume ratio, play an important role in the generation of vorticity. Results from the vorticity budget analysis show that the drag tilting and stretching term contributes significantly in the areas where these gradients are present, namely the edges of the canopy.
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来源期刊
CiteScore
10.30
自引率
9.70%
发文量
415
审稿时长
69 days
期刊介绍: Agricultural and Forest Meteorology is an international journal for the publication of original articles and reviews on the inter-relationship between meteorology, agriculture, forestry, and natural ecosystems. Emphasis is on basic and applied scientific research relevant to practical problems in the field of plant and soil sciences, ecology and biogeochemistry as affected by weather as well as climate variability and change. Theoretical models should be tested against experimental data. Articles must appeal to an international audience. Special issues devoted to single topics are also published. Typical topics include canopy micrometeorology (e.g. canopy radiation transfer, turbulence near the ground, evapotranspiration, energy balance, fluxes of trace gases), micrometeorological instrumentation (e.g., sensors for trace gases, flux measurement instruments, radiation measurement techniques), aerobiology (e.g. the dispersion of pollen, spores, insects and pesticides), biometeorology (e.g. the effect of weather and climate on plant distribution, crop yield, water-use efficiency, and plant phenology), forest-fire/weather interactions, and feedbacks from vegetation to weather and the climate system.
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