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Process Optimization and Integration Strategies for Material Reclamation and Recovery.

机译:物料回收和回收的过程优化和集成策略。

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摘要

Industrial facilities are characterized by the significant usage of natural resources and the massive discharge of waste materials. An effective strategy towards the sustainability of industrial processes is the conservation of natural resources through waste reclamation and recycles. Because of the numerous number of design alternatives, systematic procedures must be developed for the effective synthesis and screening of reclamation and recycle options. The objective of this work is to develop systematic and generally applicable procedures for the synthesis, design, and optimization of resource conservation networks. Focus is given to two important applications: material utilities (with water as an example) and spent products (with lube oil as an example). Traditionally, most of the previous research efforts in the area of designing direct-recycle water networks have considered the chemical composition as the basis for process constraints. However, there are many design problems that are not component-based; instead, they are property-based (e.g., pH, density, viscosity, chemical oxygen demand (COD), basic oxygen demand (BOD), toxicity). Additionally, thermal constraints (e.g., stream temperature) may be required to identify acceptable recycles. In this work, a novel approach is introduced to design material-utility (e.g., water) recycle networks that allows the simultaneous consideration of mass, thermal, and property constraints. Furthermore, the devised approach accounts for the heat of mixing and for the interdependence of properties. An optimization formulation is developed to embed all potential configurations of interest and to model the mass, thermal, and property characteristics of the targeted streams and units. Solution strategies are developed to identify stream allocation and targets for minimum fresh usage and waste discharge. A case study on water management is solved to illustrate the concept of the proposed approach and its computational aspects.;Next, a systematic approach is developed for the selection of solvents, solvent blends, and system design in in extraction-based reclamation processes of spent lube oil Property-integration tools are employed for the systematic screening of solvents and solvent blends. The proposed approach identifies the main physical properties that influence solvent(s) performance in extracting additives and contaminants from used lubricating oils (i.e. solubility parameter (delta), viscosity (upsilon), and vapor pressure (p)). The results of the theoretical approach are validated through comparison with experimental data for single solvents and for solvent blends. Next, an optimization formulation is developed and solved to identify system design and extraction solvent(s) by including techno-economic criteria. Two case studies are solved for identification of feasible blends and for the cost optimization of the system.
机译:工业设施的特点是对自然资源的大量使用和废物的大量排放。实现工业流程可持续性的有效策略是通过废物回收和循环利用来保护自然资源。由于设计选择的数量众多,必须开发系统的程序来有效地综合和筛选开垦和循环利用方案。这项工作的目的是为资源保护网络的综合,设计和优化开发系统的,普遍适用的程序。重点放在两个重要的应用程序上:材料公用事业(以水为例)和废品(以润滑油为例)。传统上,在设计直接循环水网络方面,大多数先前的研究工作都将化学成分视为过程约束的基础。但是,存在许多并非基于组件的设计问题。相反,它们是基于属性的(例如pH,密度,粘度,化学需氧量(COD),基本需氧量(BOD),毒性)。另外,可能需要热约束(例如,料流温度)以识别可接受的再循环。在这项工作中,引入了一种新颖的方法来设计材料效用(例如水)循环网络,该网络允许同时考虑质量,热和特性约束。此外,所设计的方法考虑了混合的热量以及性质的相互依赖性。开发了一种优化公式,以嵌入所有可能的感兴趣配置,并为目标流和单元的质量,热和特性特征建模。开发解决方案策略以识别流分配和目标,以最大程度地减少新鲜使用和废物排放。解决了一个关于水管理的案例研究,以说明所提出的方法的概念及其计算方面。接下来,开发了一种系统的方法,用于基于废料的基于回收的回收过程中的溶剂,溶剂混合物的选择和系统设计。润滑油性能综合工具用于系统地筛选溶剂和溶剂混合物。所提出的方法确定了影响溶剂从废润滑油中提取添加剂和污染物的性能的主要物理特性(即溶解度参数(δ),粘度(upsilon)和蒸气压(p))。通过与单一溶剂和混合溶剂的实验数据进行比较,验证了该理论方法的结果。接下来,开发并解决了一个优化公式,以通过包括技术经济标准来识别系统设计和萃取溶剂。解决了两个案例研究,以识别可行的混合物并优化系统成本。

著录项

  • 作者

    Kheireddine, Houssein A.;

  • 作者单位

    Texas A&M University.;

  • 授予单位 Texas A&M University.;
  • 学科 Engineering Chemical.;Engineering Environmental.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 140 p.
  • 总页数 140
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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