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Quantifying weathering profiles of environmental contaminants from marine and coastal oil spills using signal processing techniques

机译:使用信号处理技术量化来自海洋和沿海石油泄漏的环境污染物的风化曲线

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Complex mixtures such as crude oil consist of hundreds of contaminants, which manifest as peaks in the raw instrument signals from analytical technology such as gas chromatography (GC), mass spectrometry (MS) and combinations thereof. Many of these contaminants, such as alkyl naphthalenes, are well-known for their toxicity to aquatic animals and humans. This poses a risk to public and environmental health as these types of compounds can persist in marine and coastal environments in varying degrees after a major oil spill such as the Deepwater Horizon disaster in the Gulf of Mexico, in April 2010. We propose a general approach towards peak feature extraction from the raw instrument signal for identifying well-known (target) and unknown (non-target) toxic contaminants in crude petroleum. Specifically, we present computational methods for determination of weathering profiles of different chemical contaminants commonly found in the ocean in the aftermath of oil spills. Proposed autonomous quantification of large-scale weathering profiles across a wide variety of marine pollutants will enable apportioning the long-term impact of off-shore drilling and oil spills to public and environmental health and safety.
机译:复杂的混合物(例如原油)由数百种污染物组成,这些污染物表现为来自分析技术(例如气相色谱(GC),质谱(MS)及其组合)的原始仪器信号中的峰。这些污染物中的许多,例如烷基萘,以其对水生动物和人类的毒性而闻名。这对公共和环境健康构成风险,因为在发生重大漏油事件(例如2010年4月墨西哥湾的Deepwater Horizo​​n灾难)后,这些类型的化合物会在海洋和沿海环境中不同程度地存在。我们提出了一种通用方法从原始仪器信号中提取峰特征,以识别原油中已知的(目标)和未知的(非目标)有毒污染物。具体来说,我们介绍了用于确定漏油事故后海洋中常见的不同化学污染物的风化剖面的计算方法。拟议的对各种海洋污染物的大规模风化剖面进行自动量化的方法,将有助于将近海钻探和溢油对公共和环境健康与安全的长期影响进行分摊。

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