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Design of heat integrated distillation column by using H-xy and T-xy diagrams

机译:利用H-xy和T-xy图设计热集成蒸馏塔

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摘要

An interactive design methodology of HIDiC with finite internal heat exchange stages is proposed. When the number of heat integrated stages is limited, the number of possible combinations of heat integration increases. Thus, the optimal design problem usually becomes a complex mixed integer nonlinear programming problem. In this research, a novel design methodology using modified Ponchon-Savarit diagram is proposed. The first modification of the diagram is the introduction of the reversible distillation curve, which shows the enthalpy profile at reversible condition. By using this curve, the target enthalpy profile in the column can be determined and the plausible stages for heat exchange can be determined by taking the predetermined theoretical stages into account. The second modification is the integration of the T-xy diagram with H-xy diagram. By doing so, the temperature difference of side exchangers can easily be identified, and it becomes possible to determine the pairing of heat integration stages between the rectifying section and the stripping section in consideration of the heat transfer area of side exchangers. The conditions obtained by the diagram methodology can be directly used in rigorous process simulation. Case studies demonstrated that the results obtained from the proposed methodology have good agreement with the conditions obtained through numerical optimization. The designer can modify the design condition interactively by checking the obtained diagram. Thus, the proposed methodology is especially beneficial at the preliminary design stage of HIDiC.
机译:提出了一种具有有限内部热交换阶段的HIDiC交互式设计方法。当热集成级的数量受到限制时,热集成的可能组合的数量会增加。因此,最优设计问题通常变成复杂的混合整数非线性规划问题。在这项研究中,提出了一种使用改进的Ponchon-Savarit图的新颖设计方法。该图的第一个修改是引入了可逆蒸馏曲线,该曲线显示了可逆条件下的焓分布。通过使用该曲线,可以确定塔中的目标焓分布,并可以通过考虑预定的理论阶段来确定热交换的合理阶段。第二个修改是将T-xy图与H-xy图集成在一起。通过这样做,可以容易地确定侧交换器的温度差,并且可以考虑侧交换器的传热面积来确定精馏部和汽提部之间的热集成级的配对。通过图论方法获得的条件可以直接用于严格的过程仿真中。案例研究表明,从所提出的方法中获得的结果与通过数值优化获得的条件具有良好的一致性。设计人员可以通过检查获得的图表来交互地修改设计条件。因此,所提出的方法在HIDiC的初步设计阶段特别有益。

著录项

  • 来源
    《Computers & Chemical Engineering》 |2013年第13期|174-183|共10页
  • 作者单位

    Process Engineering Division, Toyo Engineering Corporation, 2-8-1, Akanehama, Narashino-shi, Chiba 275-0024, Japan,Department of Chemical Engineering, Kyoto University, Katsura Campus, Nishikyo-ku, Kyoto 615-8510,Japan;

    Department of Chemical Engineering, Kyoto University, Katsura Campus, Nishikyo-ku, Kyoto 615-8510,Japan;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    HIDiC; Distillation; Ponchon-Savarit diagram; Energy saving;

    机译:HIDiC;蒸馏;Ponchon-Savarit图;节约能源;

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