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Investigation of CO2 hydrate formation conditions for determining the optimum CO2 storage rate and energy: Modeling and experimental study

机译:确定最佳CO2储存速率和能量的CO2水合物形成条件的研究:建模和实验研究

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In this study, optimum conditions for CO2 hydrate formation are investigated in order to determine the maximum CO2 storage rate and optimum energy consumption. First, a wide range of new experiments are carried out by using three-blade, six-blade and anchor impellers. For each experiment, a mass transfer model and a semi-empirical equation are utilized and the amount of energy consumption is measured. Temperature, impeller speed, initial pressure and volume of water, surface tension and the diffusion coefficient of CO2 are considered as the factors that affect the kinetics of CO2 hydrate. Maximum energy savings is achieved with maximum hydrate formation rate. It is found that the impeller speed is the most effective factor here. Moreover, at a given impeller speed, the hydrate formation rate is four times greater than the three-blade impeller when a combination of six-blade and anchor impellers is used. In addition, the rate of hydrate formation becomes 2, 1.6 and 3 times greater by reducing the volume of water, increasing the temperature and initial pressure and increasing the concentration of surfactant up to its optimum concentration in such a way that the energy consumption reduces from 1.92 kWh to 0.08 kWh when these effective parameters are changed. (C) 2016 Elsevier Ltd. All rights reserved.
机译:在这项研究中,研究了确定CO2水合物形成的最佳条件,以确定最大的CO2储存速率和最佳能耗。首先,使用三叶,六叶和锚定叶轮进行了一系列新的实验。对于每个实验,均采用传质模型和半经验方程式,并测量能耗量。温度,叶轮速度,初始压力和水量,表面张力和CO2扩散系数被认为是影响CO2水合物动力学的因素。最大的水合物生成速率可实现最大的节能效果。发现叶轮速度是最有效的因素。而且,在给定的叶轮速度下,当结合使用六叶轮和锚定叶轮时,水合物的生成速率是三叶轮的四倍。此外,通过减少水的体积,增加温度和初始压力以及将表面活性剂的浓度增加到最适浓度,使水合物的生成速度提高了2倍,1.6倍和3倍,从而降低了能耗。更改这些有效参数后,将在1.92 kWh至0.08 kWh之间。 (C)2016 Elsevier Ltd.保留所有权利。

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