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    新型复合胺的开发及其燃煤烟气二氧化碳捕集性能研究

    Development of a new type of compound amine and study on its carbon dioxide capture performance in flue gas

    • 摘要: 人类消耗的化石能源日益增多,造成大气中温室气体的含量持续升高,已引发显著的全球变暖效应。化学吸收法是应用广泛的低分压烟气二氧化碳捕集技术,然而目前仍存在再生能耗较高等问题。以有机胺吸收剂为研究对象,通过小试试验比较了哌嗪及其衍生物的二氧化碳捕集性能,并且开发了6种复合胺吸收剂。小试吸收–再生试验结果表明,配方2不仅具有较高的二氧化碳吸收容量,而且拥有优异的再生性能,其饱和吸收量为58.6 L/L,最大吸收速率为0.72 mL/min。此外,该吸收剂的最大解吸速率为5.24 mL/min、再生量为52.2 L/L。基于小试结果,选取配方1、2和6进行3 m3/h规模的动态模试。模试试验表明,在二氧化碳捕集率达到90%的条件下,所开发的新型复合胺的再生能耗均低于单乙醇胺(MEA)吸收剂。其中,配方2效果最优,在气液比300∶1时再生能耗为MEA吸收剂的58%。该研究工作系统考察了低能耗吸收剂及吸收工艺,研究成果对工程应用具有指导意义。

       

      Abstract: The increasing consumption of fossil energy by human beings has caused the content of greenhouse gases in the atmosphere to become higher and higher, which has brought about a significant global warming effect. Chemical absorption method is a widely used low-pressure flue gas carbon dioxide capture technology; however, there are still issues such as high regeneration energy consumption. Based on organic amine absorbents, this article compares the carbon dioxide capture performance of piperazine and its derivatives was compared through small-scale experiments, and develops six types of composite amine absorbents. According to the results of the small-scale absorption regeneration test, formula 2 not only has a high carbon dioxide absorption capacity, but also has excellent regeneration performance, with a saturated absorption capacity of 58.6 L/L and a maximum absorption rate of 0.72 mL/min. In addition, the maximum desorption rate of the absorbent is 5.24 mL/min and the regeneration rate is 52.2 L/L. Based on the results of the small-scale trial, formulas 1, 2, and 6 were selected for dynamic model testing at a scale of 3 m3/h. In the model experiment, under the condition of a carbon dioxide capture rate of 90%, the regeneration energy consumption of the newly developed composite amine was lower than that of monoethanolamine (MEA) absorbent. Among them, formula 2 has the best effect, with a regeneration energy consumption of 58% of MEA absorbent under the condition of gas-liquid ratio of 300∶1. The study systematically studies low-energy absorbents and absorption processes, and the research results have certain guiding significance for engineering applications.

       

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