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An engineering equation of state: Square-well statistical associating fluid theory (SAFT).

机译:工程状态方程:平方井统计缔合流体理论(SAFT)。

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摘要

Molecular thermodynamics is an engineering discipline rooted in molecular physics and physical chemistry and aimed at developing practical models that predict the properties of matter. The goal of this work is to develop a molecular thermodynamic model for predicting fluid densities, phase equilibria, and energy functions, such as enthalpy and heat capacity. Chemical engineers need these properties to develop and design new processes and materials, and to make these processes energy efficient and environmentally benign.; The approach is to hypothesize a mathematical approximation that captures interactions among real molecules on the basis of a molecular theory called the statistical associating fluid theory (SAFT). In this approximation, each molecule is composed of spherical segments that interact according to a square-well potential. These segments are allowed to form covalent or hydrogen bonds. A result of this approximation is an engineering equation of state referred to as SAFT1 that is found to be applicable to small and large molecules, associating and non-associating molecules, and to homopolymers and copolymers.; SAFT1 is tested on real-fluid properties, such as vapor pressure, vapor and liquid density, second virial coefficient, heat of vaporization, specific heat, and phase equilibria. For small n-alkanes, not only the vapor pressure and liquid density (that are correlated), but also the second virial coefficient, heat of vaporization, and heat capacity (that are predicted) are found to be accurate. For small alkanols-1, the vapor pressure and liquid density are also well correlated. The SAFT1 parameters for n-alkanes and alkanols-1 are found to be well behaved and hence easy to estimate reliably for high-molecular-weight molecules of corresponding homologs.; The SAFT1 equation of state developed in this work has already been applied by others to calculate fluid-liquid and solid-fluid equilibria in solutions of n-alkanes and polyolefins. More important, the knowledge and practical tools generated in this work are applicable to developing new processes and materials that are less energy wasteful and more environmentally benign.
机译:分子热力学是一门扎根于分子物理学和物理化学的工程学科,旨在开发可预测物质性质的实用模型。这项工作的目的是开发一种分子热力学模型,用于预测流体密度,相平衡和能量函数,例如焓和热容。化学工程师需要这些特性来开发和设计新的工艺和材料,并使这些工艺高效节能并且对环境无害。该方法是基于一种称为统计缔合流体理论(SAFT)的分子理论,假设一个数学近似值可以捕获真实分子之间的相互作用。在这种近似中,每个分子都由根据方阱势相互作用的球形部分组成。这些链段可以形成共价键或氢键。这种近似的结果是被称为SAFT1的工程状态方程,该方程被发现适用于小分子和大分子,缔合和非缔合分子以及均聚物和共聚物。对SAFT1进行了真实流体特性测试,例如蒸气压,蒸气和液体密度,第二维里系数,汽化热,比热和相平衡。对于小的正构烷烃,不仅蒸汽压和液体密度(相关),而且第二维里系数,汽化热和热容(预测)都是准确的。对于小链烷醇-1,蒸气压和液体密度也具有很好的相关性。发现正构烷烃和链烷醇-1的SAFT1参数表现良好,因此容易可靠地估计相应同系物的高分子量分子。这项工作开发的SAFT1状态方程已被其他人用于计算正构烷烃和聚烯烃溶液中的流体-液体和固体-流体平衡。更重要的是,这项工作中产生的知识和实用工具适用于开发新工艺和新材料,这些新工艺和新材料的能源浪费更少,对环境更无害。

著录项

  • 作者

    Adidharma, Hertanto.;

  • 作者单位

    Louisiana State University and Agricultural & Mechanical College.;

  • 授予单位 Louisiana State University and Agricultural & Mechanical College.;
  • 学科 Applied Mechanics.; Engineering Chemical.
  • 学位 Ph.D.
  • 年度 1999
  • 页码 104 p.
  • 总页数 104
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 应用力学;化工过程(物理过程及物理化学过程);
  • 关键词

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