表面活性技术中气液膜吸收器热交换和质交换过程的研究

O. Dzevochko, M. Podustov, A. Dzevochko
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引用次数: 0

摘要

文章指出,表面活性剂具有不对称结构的分子,其中包含亲水性和疏水性基团。表面活性剂生产的主要环节是气态三氧化硫对有机物的磺化过程。结果表明,气液膜吸收器的硫化过程包括以下几个阶段:三氧化硫从气相到液相的传质过程;通过放热化学反应的有机物质吸收三氧化硫的过程;液相与气流之间的热交换过程;液相与冷却水流动之间的热交换过程。对这些阶段的传热传质过程进行研究,可以选择计算传热系数、传热系数和传质系数所需的方程。当扩散普朗特数和热普朗特数接近于1时,建议用该方程计算液气换热系数。用经典方程计算液相到反应管壁面的传热系数没有得到理想的结果。因此,采用了考虑气液流动整体特性的方程。建议根据经典的努塞尔方程计算从反应管壁到冷却水流量的换热系数。给出了沿反应器长度方向计算反应质量密度和动态粘度的实验数据。通过对从事有机物磺化过程的6位作者的方程进行分析,得到了传质系数的计算公式。建立了薄膜吸收器中硫化过程的数学描述,以供分析。在数学描述的发展过程中,编制了反应管的传质和传热平衡方程。根据数学建模结果,选择了包含气液界面切向应力的方程。将数学建模结果与Gutierrez的实验数据和Dabir的数学建模结果进行了比较。所得结果将用于薄膜吸收器硫酸酸化过程的数学建模。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
RESEARCH OF THERMAL AND MASS-EXCHANGE PROCESSES IN GAS-LIQUID FILM ABSORBERS IN SURFACE-ACTIVE TECHNOLOGY
The article states that surfactants have an asymmetrically constructed molecule that contains hydrophilic and hydrophobic groups. The main department of surfactant production is the process of sulfation of organic matter with gaseous sulfur trioxide. It is shown that the process of sulfation in gas-liquid film absorbers consists of the following stages: the process of mass transfer of sulfur trioxide from the gas stream to the liquid phase; the process of absorption of sulfur trioxide by organic matter with the passage of an exothermic chemical reaction; the process of heat exchange between the liquid phase and the gas stream; the process of heat exchange between the liquid phase and the flow of cooling water. Studies of heat and mass transfer processes at these stages make it possible to select the necessary equations for the calculation of heat transfer coefficients, heat transfer coefficients and mass transfer coefficient. It is recommended to calculate the heat transfer coefficient from liquid to gas by the equation when the diffusion and thermal Prandtl numbers are close to unity. The use of the classical equation to calculate the heat transfer coefficient from the liquid phase to the wall of the reaction tube did not give the desired result. Therefore, an equation was used that takes into account the properties of the gas-liquid flow as a whole. It is recommended to calculate the heat transfer coefficient from the reaction pipe wall to the cooling water flow according to the classical Nusselt equation. Experimental data processing data for calculating the density and dynamic viscosity of the reaction mass along the length of the reactor are presented. The equation for calculating the mass transfer coefficient was obtained by analyzing 6 equations of different authors who were engaged in the process of sulfation of organic substances. A mathematical description of the sulfation process in a film absorber was developed for analysis. During the development of the mathematical description, the balance equations of mass and heat transfer for the reaction tube were compiled. Based on the results of mathematical modeling, an equation was chosen that includes the tangential stress at the gas-liquid interface. The results of mathematical modeling were compared with Gutierrez's experimental data and the results of Dabir's mathematical modeling. The obtained results will be used in mathematical modeling of the sulfation process in a film absorber.
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