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研究生: 朱有星
You-Xing Chu
論文名稱: 在超臨界CO2之溶解度量測及Poynting factor之探討
指導教授: 李亮三
Liang-Sun Lee
口試委員:
學位類別: 碩士
Master
系所名稱: 工學院 - 化學工程與材料工程學系
Department of Chemical & Materials Engineering
畢業學年度: 88
語文別: 中文
論文頁數: 32
中文關鍵詞: 超臨界
外文關鍵詞: supercritical
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  • 當我們在處理一般中低壓下的相平衡問題時,並不會考慮Poynting factor 的影響,而隨著壓力的增加,Poynting factor 的影響愈加明顯,甚側是達到了劇烈地變化,為什麼會產生這種現象?相關的參考文獻也是非常的貧乏,所以本篇論文的主要目的是希望對Poynting factor 作進一步的研究。
    本篇論文採用三種葯品分別為|Benzoic acid、Phenanthrene、2,3 —Dimethylhexane,作為探討壓力對Poynting factor 之間的影響關係,以期從中獲得對高壓相平衡的更多更有利的知識,尤其是在超臨界流體的運用愈來愈廣泛的同時,我們也希望能對其有更全面的認識,由本實驗結果我們發現fP著壓力的升高而有高,而且高溫反而使其得到較低的fP值


    Do not take Poynting factor into consideration when we deal with questions of the phase equilibrium of low-moderative pressure. However, the more pressure increases, the more affect Poynting factor dose. Drastically, it would be reach the changes. Why does it produce the phenomenon? These kinds of references are hard to find.
    The main idea of the theory is on Poynting factor and do it further research. The theory adapts three component names: Benzoic acid, Phenanthrene, and 2,3-Dimethylhexane. In order to get more knowledge and more advantages from the phase equilibrium of high-modrative pressure, we use these three component names to discuss what’s the relationship between pressures to Poynting factor? Operating Supercritical fluid is more popular, we hope we have well-round knowledge at the same time. By the way, ran by results of experiment, we found, while pressure go up then Poynting factor dose, meanwhile the high temperature even has lower Poynting factor.

    摘要Ⅰ 英文摘要Ⅱ 目錄Ⅲ 圖表目錄Ⅳ 符號說明Ⅵ 第一章 緒論 1-1前言1 1-2超臨界流體之簡介1 1-3超臨界流體之優缺點3 1.4超臨界流體的應用4 第二章理論計算 2-1相平衡理論推導6 2-2 PR EOS及vdW混合律之計算7 第三章 實驗部分 3-1實驗裝置介紹9 3-2實驗藥品10 3-3實驗步驟11 第四章 結果與討論 4-1交錯壓力13 4-2 實驗數據的回歸13 4-3 Poynting factor 的結果13 4-4實驗操作之討論14 參考文獻25 附錄26

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    Reverchon, E. C., J. M. S. Kwong, “Solubility of Two Monoterpenes in supercritical Carbon Dioxide,” J. Chem. Eng. Data, 38,458-465 (1993)
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    Zlger, D. H., and C. A. Eckert “Correlation and Prediction of Solid-supercritical Fluid Phase Equilibria.,” Ind. Eng. Chem. Process Des. Dev., 22, pp 582-588 (1983)

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