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Characterization, chemodynamics and environmental impact assessment of leachates from complex organic materials.

机译:复杂有机材料中渗滤液的表征,化学动力学和环境影响评估。

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摘要

More than 65,000 organic chemicals are currently in commercial production with approximately 1000 added each year. Many chemicals are released into the environment as organic mixtures derived from complex hazardous or solid wastes. Of these, more than 1000 chemicals are of environmental concern because of their production quantities, toxicity, persistence, and tendency to bioaccumulate.;To manage the impacts of these chemicals to the environment, the environmental chemodynamics of such Complex Organic Mixtures (COMs) or Solid Waste Materials (SWMs) must be predicted accurately. Required information includes the molecular organic composition of SWMs/COMs and/or their leachates, the transport processes and migration in and between the various multimedia environments, chemical and biochemical transformation processes, and effects on the interacting organisms.;A technique is developed to predict the potential impact of SWMs/COMs based on the organic chemical composition of the extracts from such complex materials and/or their leachates. In addition, the methodology can be used to estimate the potential hazards of organic pollutants in such complex mixture, ultimate fate and environmental toxicity. This technique consists of three fundamental approaches: characterization and source partitioning, chemodynamics and Environmental Impact Assessment (EIA) models.;The characterization and source partitioning model of SWMs/COMs and their leachates are based on their lipid molecular marker (MM) signatures. Chemodynamics (i.e., Fate-Transport) model is based on experiments such as leaching, sorption, volatilization, photolysis, and biodegradation. These experiments are carried out for different SWM leachates and a group of polycyclic aromatic hydrocarbons (PAHs) that are characteristic to the studied leachates. The Environmental Impact Assessment (EIA) model estimates the probability of 96-hr fresh water alga Selenastrum capricornutum chronic toxicity of SigmaPAH-containing SWMs/COMs using a combination of leaching kinetics, equilibrium partitioning, QSPR-QSAR, toxic unit, multicomponent joint toxic effect of mixtures (i.e., additivity, synergism, or antagonism) and dose-response models. The SigmaPAH model is verified by comparing both predicted and observed toxicity in different waste materials. Molecular Connectivity-Quantitative Structure Activity Relationship (MC-QSAR) techniques then are used to develop a predictive model to estimate the concentrations of PAH components in mixtures derived from SWMs/COMs leachates that would jointly cause 50% inhibition of alga Selenastrum capricornutum toxicity.
机译:目前有超过65,000种有机化学品投入商业生产,每年约增加1000种。许多化学物质以源自复杂危险或固体废物的有机混合物的形式释放到环境中。其中,有1000多种化学物质因其产量,毒性,持久性和生物蓄积性而成为环境关注的问题;要管理这些化学物质对环境的影响,需要使用此类复杂有机混合物(COMs)的环境化学动力学或固体废物(SWM)必须准确预测。所需的信息包括SWM / COM和/或其渗滤液的分子有机组成,各种多媒体环境中及其之间的迁移过程和迁移,化学和生化转化过程以及对相互作用生物的影响。 SWM / COM的潜在影响基于这种复杂材料和/或其浸出液中提取物的有机化学组成。此外,该方法可用于估算这种复杂混合物中有机污染物的潜在危害,最终命运和环境毒性。该技术包括三种基本方法:表征和源分配,化学动力学和环境影响评估(EIA)模型。SWM / COMs及其渗滤液的表征和源分配模型基于它们的脂质分子标记(MM)签名。化学动力学(即命运传递)模型基于诸如浸出,吸附,挥发,光解和生物降解的实验。这些实验是针对不同的SWM渗滤液和一组研究的渗滤液特有的多环芳烃(PAH)进行的。环境影响评估(EIA)模型结合了浸出动力学,平衡分配,QSPR-QSAR,毒性单位,多组分联合毒性效应,估算了含SigmaPAH的SWM / COMs 96小时淡水海藻忍冬硒慢性毒性的可能性混合物(即加性,协同作用或拮抗作用)和剂量反应模型。通过比较不同废物中的预测毒性和观察到的毒性来验证SigmaPAH模型。然后,使用分子连通性-定量结构活性关系(MC-QSAR)技术开发一种预测模型,以评估SWM / COMs渗滤液衍生的混合物中PAH组分的浓度,这些混合物会共同抑制藻类硒酸硒(Selenastrum capricornutum)的毒性。

著录项

  • 作者

    Aboul-Kassim, Tarek A. T.;

  • 作者单位

    Oregon State University.;

  • 授予单位 Oregon State University.;
  • 学科 Environmental engineering.;Biogeochemistry.;Environmental science.
  • 学位 Ph.D.
  • 年度 1998
  • 页码 364 p.
  • 总页数 364
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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