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Fugitive emission source characterization using a gradient-based optimization scheme and scalar transport adjoint

机译:使用基于梯度的优化方案和标量输运伴随物对逃逸排放源进行表征

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摘要

Fugitive emissions are important sources of greenhouse gases and lost product in the energy sector that can be difficult to detect, but are often easily mitigated once they are known, located, and quantified. In this paper, a scalar transport adjoint-based optimization method is presented to locate and quantify unknown emission sources from downstream measurements. This emission characterization approach correctly predicted locations to within 5 m and magnitudes to within 13% of experimental release data from Project Prairie Grass. The method was further demonstrated on simulated simultaneous releases in a complex 3-D geometry based on an Alberta gas plant. Reconstructions were performed using both the complex 3-D transient wind field used to generate the simulated release data and using a sequential series of steady-state RANS wind simulations (SSWS) representing 30 s intervals of physical time. Both the detailed transient and the simplified wind field series could be used to correctly locate major sources and predict their emission rates within 10%, while predicting total emission rates from all sources within 24%. This SSWS case would be much easier to implement in a real-world application, and gives rise to the possibility of developing pre-computed databases of both wind and scalar transport adjoints to reduce computational time.
机译:逸散排放是能源部门中温室气体和损失产品的重要来源,可能难以发现,但一旦已知,定位和量化,则通常可以轻松减轻。在本文中,提出了一种基于标量输运伴随的优化方法来定位和量化来自下游测量的未知排放源。这种排放表征方法可以正确地预测位置,其距离草原草原草项目的实验释放数据在5 m以内,幅度在13%以内。该方法在基于Alberta天然气厂的复杂3-D几何结构中的模拟同时释放中得到了进一步证明。使用用于生成模拟释放数据的复杂3D瞬态风场以及代表物理时间间隔为30 s的一系列顺序的稳态RANS风模拟(SSWS)进行重建。详细的瞬态和简化的风场序列都可用于正确定位主要排放源并预测其排放率在10%以内,同时预测所有排放源的总排放率在24%以内。这种SSWS案例在现实应用中将更容易实现,并带来了开发风和标量运输伴随物的预先计算数据库以减少计算时间的可能性。

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