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Process design for the environment: A multiobjective optimization framework.

机译:环境的流程设计:多目标优化框架。

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摘要

Increasing environmental awareness and regulations coupled with soaring waste management costs have created the need to incorporate more environmental considerations into the design and operation of industrial chemical processes. However, including environmental-economic objectives at any stage in process or product design poses a bewildering problem of multiple and conflicting objectives. Furthermore, environmental research in the last decade has resulted in new environmental control technologies, models for which are currently unavailable. This dissertation focuses on the multiobjective nature of the problems for evaluating the existing as well as new control technologies.;The modeling environments, which are considered, include the non-equilibrium model for the BACT of NOx removal process that is a complete transparent self-built model, the ASPEN chemical process simulator that is a semi-black-box model and a complete black-box model for heat exchanger design from the Heat Transfer Research Institute (HTRI).;The main contributions of the work include: (a) Modeling a new best available control technology (BACT) for NOx removal; (b) Defining system effectiveness in terms of economic and potential environmental impacts as a multiobjective framework; (c) Improving the efficiency and accuracy of the generalized framework by developing a new and efficient multiobjective optimization algorithm; (d) Promoting the market of this BACT control technology to reduce high level of NOx and SOx emissions by providing designs that are cost-effective and minimal environmental emissions through applying this new and efficient multiobjective optimization framework; (e) Augmenting traditional chemical process simulators such as ASPEN, with the capacity to design for environmentally friendly and economically effective processes by inclusion of the generalized waste reduction (WAR) algorithm and an efficient multiobjective framework under uncertainty in the ASPEN simulator; (f) Performing the first successful application of genetic algorithms to optimal design of heat exchanger with black-box models.
机译:不断提高的环保意识和法规,加上不断增加的废物管理成本,使得有必要将更多的环境因素纳入工业化学工艺的设计和操作中。但是,在过程或产品设计的任何阶段都包括环境经济目标会造成多重且相互矛盾的目标,令人困惑。此外,近十年来的环境研究产生了新的环境控制技术,目前尚无可用的模型。本论文着眼于评估现有和新控制技术的问题的多目标性质。所考虑的建模环境包括脱硝过程中BACT的非平衡模型,这是一个完全透明的自建立的模型,ASPEN化学过程仿真器,是传热研究所(HTRI)的半黑箱模型和用于热交换器设计的完整黑箱模型。该工作的主要贡献包括:(a)建模一种新的最佳可用控制技术(BACT),以去除NOx; (b)从经济和潜在环境影响的角度定义系统效力,作为一个多目标框架; (c)通过制定一种新的,有效的多目标优化算法,提高通用框架的效率和准确性; (d)通过采用这种新型高效的多目标优化框架,提供具有成本效益和最小环境排放的设计,从而促进这种BACT控制技术的市场,以减少高水平的NOx和SOx排放; (e)增强诸如ASPEN之类的传统化学过程模拟器,使其能够通过在ASPEN模拟器的不确定性中纳入广义废物减少(WAR)算法和有效的多目标框架来设计环保和经济有效的过程; (f)首次成功地将遗传算法应用于具有黑箱模型的热交换器的最佳设计。

著录项

  • 作者

    Fu, Yan.;

  • 作者单位

    Carnegie Mellon University.;

  • 授予单位 Carnegie Mellon University.;
  • 学科 Environmental science.;Civil engineering.;Chemical engineering.
  • 学位 Ph.D.
  • 年度 2000
  • 页码 276 p.
  • 总页数 276
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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