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Evaluation of Emissions from R&D Facilities Using Stack Measurements.

机译:使用烟囱测量评估研发设施的排放。

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摘要

Research and development (R&D) facilities may be required to estimate air chemical emissions to demonstrate compliance with federal and state regulations, or to manage emissions to avoid nuisance impacts from their operations. These emissions are difficult to estimate because R&D facilities typically use a large number of chemicals in small quantities and engage in numerous and diverse activities which can change over time. Although not required for compliance, the Pacific Northwest National Laboratory (PNNL) sampled air chemical emissions from facility stacks during 1998--2008. The purpose of the sampling was to provide data to compare estimated release fractions to those used for emissions estimates and to verify that methods used to determine compliance with air regulations and permits conservatively predict actual emissions. This unique data set was analyzed to compare emissions with regulatory criteria; determine relationships with chemical inventories, use quantities, and properties; and identify signatures of sources contributing to the emissions.;For comparison with regulatory data, stack measurements were used as a basis to calculate 24-hr and annual average emissions and ambient air concentrations. The study included an extreme worst-case analysis maximizing emissions and alternate more realistic analyses using a Monte Carlo method that takes into account the full distribution of sampling results. The results from these analyses were then compared to emissions estimated from chemical inventories. Ambient air concentrations calculated from the measurement data were below acceptable source impact levels for almost all cases even under extreme worst-case assumptions. More realistic scenarios reduced the estimate significantly depending on the chemical and the mode of operation.;Release fractions were calculated by dividing emission estimates obtained using a Monte Carlo technique on the measured data by a building chemical inventory quantity. Release fraction values had a wide range among chemicals and among data sets for different buildings and/or years for a given chemical. Regressions of release fractions and of mean emissions to chemical inventory and properties gave weak correlations. These results highlight the difficulties in estimating emissions from R&D facilities using chemical inventory data.;Positive matrix factorization (PMF) was applied to stack measurements and, depending on the building, resulted in between 9 and 11 factors contributing to emissions. Some factors were similar between buildings, while others had similar profiles for two or more buildings but not for all four. At least one factor for each building was identified that contained a broad mix of many species, and constraints were successfully used in PMF to modify these factors to resemble more closely the off-shift concentration profiles.
机译:可能需要研发(R&D)设施来估算空气中的化学物质排放量,以证明其符合联邦和州法规,或管理排放量,以避免其运营造成的有害影响。这些排放量很难估算,因为研发设施通常使用大量的少量化学品,并且从事随时间变化的众多活动。尽管不是合规性所必需的,但太平洋西北国家实验室(PNNL)在1998--2008年期间对设施烟囱中的空气化学物质排放进行了采样。采样的目的是提供数据,以将估计的排放分数与用于排放估算的排放分数进行比较,并验证用于确定是否符合空气法规并允许保守地预测实际排放的方法。对这一独特的数据集进行了分析,以将排放量与法规标准进行比较;确定与化学品库存,使用数量和性质的关系;为了与法规数据进行比较,使用烟囱测量作为计算24小时和年平均排放量以及环境空气浓度的基础。该研究包括一个极端的最坏情况分析,该分析使排放最大化,并使用考虑了采样结果的全部分布的蒙特卡洛方法进行更现实的分析。然后将这些分析的结果与化学清单估计的排放进行比较。从测量数据计算得出的环境空气浓度几乎在所有情况下都低于可接受的源影响水平,即使在极端最坏的情况下也是如此。更实际的情况会根据化学品和操作模式显着降低估算值。通过使用蒙特卡洛技术对测量数据得出的排放估算值除以建筑化学品库存量,可以计算出释放分数。释放分数值在化学品之间以及给定化学品的不同建筑物和/或年份的数据集之间差异很大。释放分数和平均排放量与化学品库存和性质的回归关系较弱。这些结果凸显了使用化学库存数据估算研发设施排放的困难。正矩阵分解(PMF)用于堆栈测量,根据建筑物的不同,导致排放的因素有9-11个。建筑物之间的某些因素相似,而另两个或两个以上的建筑物则具有相似的特征,但并非所有四个建筑物都相似。已确定每个建筑物的至少一个因素包含许多物种的广泛混合物,并且在PMF中成功使用约束条件来修改这些因素,使其更接近轮班时的浓度曲线。

著录项

  • 作者

    Ballinger, Marcel Y.;

  • 作者单位

    University of Washington.;

  • 授予单位 University of Washington.;
  • 学科 Engineering Environmental.;Atmospheric Sciences.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 94 p.
  • 总页数 94
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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