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首页> 外文期刊>Journal of the American Oil Chemists' Society >Solvent-based fatty alcohol synthesis using supercritical butane: Flowsheet analysis and process design
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Solvent-based fatty alcohol synthesis using supercritical butane: Flowsheet analysis and process design

机译:使用超临界丁烷的基于溶剂的脂肪醇合成:流程图分析和工艺设计

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摘要

The liquid-phase hydrogenolysis of fatty esters to fatty alcohols is an important step in the industrial manufacture of surfactants and detergents. High operating pressures are necessary, due to the low solubility of hydrogen in fatty esters feeds. In principle, these high operating pressures might be overcome by use of a suitable solvent, but only at the expense of large solvent recycle and cumbersome product-solvent separation. The employ of supercritical solvents may resolve these drawbacks, as an elegant solvent-product separation is possible by reverting to the subcritical regime. In the present work the hydrogenolysis of methyl palmitate in supercritical butane is investigated by simulation. Operating conditions are analyzed on the basis of vapor liquid equilibrium data and chemical equilibrium considerations. Separation and recycle problems are evaluated and discussed on the basis of a flowsheet analysis. It is demonstrated that an efficient hydrogenolysis process may be developed by using supercritical butane as solvent. A moderate operating pressure (9 MPa) and temperature (470 K) lead to high conversion levels and high product purity. A hydrogen to ester molar ratio of 4:1 in the feed is achievable, which compares favorably to existing liquid- and gas-phase processes, and allows recycle streams to be reduced.
机译:脂肪酯的液相氢解为脂肪醇是工业生产表面活性剂和洗涤剂的重要步骤。由于氢在脂肪酯原料中的溶解度低,因此需要较高的操作压力。原则上,可以通过使用合适的溶剂来克服这些高操作压力,但是仅以大的溶剂再循环和麻烦的产物-溶剂分离为代价。使用超临界溶剂可以解决这些缺点,因为可以通过恢复到亚临界状态来进行优雅的溶剂-产物分离。在本工作中,通过模拟研究了棕榈酸甲酯在超临界丁烷中的氢解反应。根据蒸气液体平衡数据和化学平衡考虑因素对运行条件进行分析。在流程分析的基础上评估并讨论了分离和回收问题。证明了通过使用超临界丁烷作为溶剂可以开发有效的氢解方法。适中的工作压力(9 MPa)和温度(470 K)导致高转化率和高产品纯度。进料中氢与酯的摩尔比为4:1,这与现有的液相和气相工艺相比非常有利,并且可以减少循环流。

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