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在 AERMOD 中开发、评估和实施建筑物下洗和羽流上升增强功能。

Development, evaluation, and implementation of building downwash and plume rise enhancements in AERMOD.

机构信息

Petersen Research and Consulting, LLC, Fort Collins, CO, USA.

Consultant, Raleigh, NC, USA.

出版信息

J Air Waste Manag Assoc. 2022 Dec;72(12):1423-1441. doi: 10.1080/10962247.2022.2120563. Epub 2022 Nov 1.

Abstract

Recent research has pointed out many reasons why the building downwash formulation in AERMOD needs to be updated due to: overly simplified equations for building wake development; equations that do not account for porous or streamlined structures; a discontinuity in the streamline equation; and over predictions when compared to field observations for buildings with a large footprint. Because of these issues, a research study was initiated in late 2016 with an overall objective of improving the building downwash algorithms in PRIME. The research study involved the use of wind tunnel modeling to develop a database of wind speed and turbulence intensity measurements downwind of various rectangular solids and streamlined (i.e., tanks and towers) structures. Based on those measurements, new equations (PRIME2) were developed to better describe the turbulence increase and velocity deficit in building wakes for these structure types. The PRIME2 building wake equations for turbulence intensity increase and velocity deficit were shown to agree better with wind tunnel observations than the current PRIME equations in AERMOD. The new equations were documented in a journal article and were added to AERMOD's PRIME subroutine. A new version of AERMOD was then compiled with the new enhanced turbulence and wind speed equations (PRIME2) for evaluation. The key feature of the PRIME2 equations is that building wake enhanced turbulence decays rapidly back to ambient levels above the top of the building versus the current PRIME theory that has constant enhanced turbulence extending up to the height of the wake. This paper provides details on the implementation of the PRIME2 code into AERMOD, PRIME plume rise enhancements, the field databases used to evaluate PRIME2, and the evaluation of PRIME2 against three field databases. The paper shows that AERMOD with the PRIME2 building downwash equations and other enhancements provides the overall best agreement with field observations.: While AERMOD/PRIME is supposed to provide accurate and unbiased estimates (within a factor of two), recent research has identified several problems with the current building downwash theory in AERMOD and comparisons against field observations have shown significant under and overpredictions. One major problem is that the current theory has the wake effect extending well above the top of the building while new research shows that the wake effect decays rapidly above the top of the building. This could lead AERMOD to underpredict or overpredict ground-level concentrations. Based on recent wind tunnel tests, a new building downwash theory has been developed and documented in a Journal article. This theory has been added to the PRIME building downwash algorithm in AERMOD and is currently included as an Alpha option in AERMOD. This paper evaluates that new theory against field observations and demonstrates that the updated theory provides better agreement with field observations than the current AERMOD. This paper points out that research and development of model building downwash improvements should be an ongoing process to help ensure a "sustainable" future where these improvements can ultimately provide a model with unbiased performance and thereby allow for responsible industrial development. This study has shown that improvements can be made in a rather quick manner and be included as Alpha options in EPA model updates. The next challenge is to transition these options from Alpha to Beta options and then finally to a default status.

摘要

最近的研究指出,由于以下原因,AERMOD 中的建筑物尾流公式需要更新:建筑物尾流发展的方程过于简化;不考虑多孔或流线型结构的方程;流线方程不连续;与大占地面积建筑物的现场观测相比,预测值过高。由于这些问题,2016 年末启动了一项研究,总体目标是改进 PRIME 中的建筑物尾流算法。该研究涉及使用风洞模型来开发各种矩形固体和流线型(即储罐和塔)结构下风的风速和湍流强度测量数据库。基于这些测量结果,开发了新的方程(PRIME2),以更好地描述这些结构类型的建筑物尾流中的湍流增加和速度不足。与 AERMOD 中的当前 PRIME 方程相比,PRIME2 建筑物尾流方程对于湍流强度增加和速度不足的预测结果与风洞观测结果更为吻合。新方程已在期刊文章中记录,并添加到 AERMOD 的 PRIME 子程序中。然后,使用新的增强型湍流和风速方程(PRIME2)编译了新版本的 AERMOD 以进行评估。PRIME2 方程的主要特点是,建筑物尾流增强的湍流迅速衰减回建筑物顶部以上的环境水平,而当前的 PRIME 理论则具有恒定的增强湍流,一直延伸到尾流的高度。本文提供了有关将 PRIME2 代码实现到 AERMOD、PRIME 羽流上升增强、用于评估 PRIME2 的现场数据库以及针对三个现场数据库评估 PRIME2 的详细信息。该论文表明,具有 PRIME2 建筑物下洗方程和其他增强功能的 AERMOD 与现场观测结果总体上最为一致:尽管 AERMOD/PRIME 应该提供准确且无偏差的估计值(在两倍以内),但最近的研究已经确定了 AERMOD 中当前建筑物下洗理论的几个问题,并且与现场观测的比较表明存在明显的低估和高估问题。一个主要问题是,当前的理论认为尾流效应延伸到建筑物的顶部以上,而新的研究表明,尾流效应在建筑物的顶部以上迅速衰减。这可能导致 AERMOD 低估或高估地面浓度。基于最近的风洞测试,已经开发并记录了一种新的建筑物下洗理论,该理论已添加到 AERMOD 的 PRIME 建筑物下洗算法中,目前作为 AERMOD 的 Alpha 选项包含在内。本文评估了该新理论与现场观测结果的对比,并证明了更新后的理论与现场观测结果的吻合度优于当前的 AERMOD。本文指出,模型建筑物下洗改进的研究和开发应该是一个持续的过程,以确保这些改进能够提供一个无偏差性能的模型,从而实现负责任的工业发展,从而为模型提供“可持续”的未来。本研究表明,改进可以很快进行,并作为 EPA 模型更新的 Alpha 选项包含在内。下一个挑战是将这些选项从 Alpha 过渡到 Beta 选项,然后最终过渡到默认状态。

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