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Process Design and Control for Eco-Efficiency.

机译:工艺设计和控制,以提高生态效率。

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The main objective of process design is to develop processes or plants that will produce goods of higher value than the raw materials used. Consequently, process design is mostly driven by the economics of production. However, many other factors, such as operability and environmental regulations have to be considered in the design of a process.;Exergy can be derived from the application of the first and the second laws of thermodynamics to a process. Exergy can be used as a measurement of how valuable the process is, that is, if the exergy values of the products of the process are close to those of the raw materials the process is highly (thermodynamically) efficient.;An eco-efficient process can be defined as one that is ecologically friendly and economically viable. This means the process should reduce energy consumption (or exergy destruction), which in turn reduces operating expenses.;Exergy along with an integrated framework for process design and process control can be used to develop more efficient processes in a faster and less costly manner than conventional process design.;Due to the dynamic nature of chemical and petrochemical processes, without process control a plant could not be operated safely and at design conditions. Disturbances drive the process in directions that are not the desired/designed operating levels. Process control is the means by which disturbances are rejected.;The objectives of this research project were to develop an exergy calculator for chemical process streams and to develop a controllability index based on exergy. These tools will allow the design engineer to gain insight into the eco-efficiency of the process from the early design stages and will reduce the number of design and control structure alternatives that need to be evaluated in detail.;The Exergy Calculator was developed and implemented in a commercial process simulator (HYSYSRTM) and in an open source chemical process simulator (Sim42RTM). This tool facilitates the generation of an exergy analysis for any process for which a simulation exists.;The new Relative Exergy Array (REA) is a controllability index that, when used with the RGA, provides information about the process interactions of a control structure and its relative thermodynamic efficiency.
机译:流程设计的主要目标是开发能够生产比所使用的原材料更高价值的商品的流程或工厂。因此,工艺设计主要由生产的经济性驱动。但是,在过程的设计中还必须考虑许多其他因素,例如可操作性和环境法规。热能可以通过将热力学第一定律和第二定律应用于过程来获得。火用度可以用来衡量该过程的价值,也就是说,如果该过程的产品的火用值接近原材料的火用值,则该过程具有很高的(热力学)效率。可以定义为生态友好且经济可行的一种。这意味着该过程应减少能耗(或消除火用),从而减少运营费用。;与过程设计和过程控制的集成框架一起,可以使用“火用”以更快,更低成本的方式开发效率更高的过程常规过程设计;由于化学和石化过程的动态性质,如果没有过程控制,则无法在设计条件下安全运行工厂。干扰会在非所需/设计的操作级别的方向上驱动过程。过程控制是消除干扰的手段。该研究项目的目的是开发用于化学过程流的火用计算器,并开发基于火用的可控性指标。这些工具将使设计工程师能够从早期设计阶段就洞悉流程的生态效率,并减少需要详细评估的设计和控制结构替代方案的数量。在商业过程模拟器(HYSYSRTM)和开源化学过程模拟器(Sim42RTM)中。该工具有助于为存在模拟的任何过程生成火用分析。新的相对火用阵列(REA)是一种可控性指标,与RGA一起使用时,可提供有关控制结构的过程交互作用的信息。其相对热力学效率。

著录项

  • 作者单位

    University of Calgary (Canada).;

  • 授予单位 University of Calgary (Canada).;
  • 学科 Engineering Chemical.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 164 p.
  • 总页数 164
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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