首页> 外文期刊>The Journal of Supercritical Fluids >Measurement and prediction of desorption behavior of five volatile organic compounds (acetone, n-hexane, methanol, toluene, and n-decane) from activated carbon for supercritical carbon dioxide regeneration
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Measurement and prediction of desorption behavior of five volatile organic compounds (acetone, n-hexane, methanol, toluene, and n-decane) from activated carbon for supercritical carbon dioxide regeneration

机译:用于超临界二氧化碳再生的活性炭中五种挥发性有机化合物(丙酮,正己烷,甲醇,甲苯和正癸烷)的解吸行为的测量和预测

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Measurement and prediction of desorption behavior of five volatile organic compounds (VOCs) (acetone, n-hexane, methanol, toluene, and n-decane) from activated carbon by using supercritical carbon dioxide regeneration were studied. Measurements of the desorption behavior were performed with a fixed bed method at temperatures from 313 to 353 K and pressures from 10.0 to 15.0 MPa. The measured desorption rates varied greatly for each VOC, which could be attributed to differences in two properties, affinity of VOCs for activated carbon and the volatility of VOCs. The measured desorption rates increased with increasing pressure and decreasing temperature, which could be explained by increasing CO2 density. A kinetic model was applied to correlate the desorption behavior. The model demonstrated satisfactory correlations of the desorption behavior with only one fitting parameter. Generalization of the fitting parameter to predict the desorption behavior were also investigated. The proposed prediction model could roughly represent the desorption behavior of VOCs over a wide range of supercritical carbon dioxide conditions. (C) 2015 Elsevier B.V. All rights reserved.
机译:利用超临界二氧化碳再生技术,对活性炭中的五种挥发性有机化合物(丙酮,正己烷,甲醇,甲苯和正癸烷)的解吸行为进行了测量和预测。解吸行为的测量是通过固定床方法在313至353 K的温度和10.0至15.0 MPa的压力下进行的。每种VOC的测得的解吸速率差异很大,这可能归因于两种特性的差异:VOC对活性炭的亲和力和VOC的挥发性。测得的解吸速率随压力增加和温度降低而增加,这可以通过增加CO2密度来解释。应用动力学模型来关联解吸行为。该模型证明了解吸行为与仅一个拟合参数的令人满意的相关性。还研究了拟合参数的一般性,以预测解吸行为。所提出的预测模型可以粗略地表示在宽范围的超临界二氧化碳条件下VOC的解吸行为。 (C)2015 Elsevier B.V.保留所有权利。

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