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CO2 capture using monoethanolamine solutions : development and validation of a process model based on the SAFT-VR equation of state

机译:使用单乙醇胺溶液捕获CO2:基于saFT-VR状态方程的过程模型的开发和验证

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摘要

The development of a predictive model for an absorber-desorber process for the separation of carbon dioxide (CO2) from a gas stream using an aqueous alkanolamine solution as a solvent is presented.udPost-combustion carbon dioxide capture by absorption with aqueous amine solvents is likely to play an important role in climate change mitigation, by helping to reduce a significant fraction of CO2 emissions from fossil fuel power plants.udThere are, however, a number of concerns with the large scale deployment of this technology, including energy requirements, solvent degradation and the environmental and health impact resulting from a potential loss of solvent and solvent degradation products.udModelling studies can play an invaluable and complementary role in addressing some of these issues, including the choice of solvent and operating conditions that yield optimal performance.udThe model presented here incorporates state-of-the-art SAFT-VR thermodynamics into a rate-based process model. A characteristic of the proposed approach is that all the reactions are treated within a thermodynamic description, assuming chemical equilibrium throughout. This greatly reduces the amount of experimental data required to model the behaviour of the absorber. Furthermore, in contrast with many treatments of reactive systems of this type, no enhancement factor is used in the process model. The absorber-desorber process model is implemented in the gPROMS software platform and validated using published pilot plant experimental data for the removal of CO2 from an air and CO2 stream using monoethanolamine (MEA) solutions.udA scaling of the diffusivity in the liquid phase, that is found to be transferable to different operating conditions, is proposed. Reliable predictions are obtained for the temperature and composition profiles in the gas and liquid phases, including a good description of the temperature bulge which sometimes appears along the height of the absorber column.udThe same transferable model is used to describe both the absorber and the desorber columns.udThe influence of key parameters of the model for different operating conditions is assessed through a sensitivity analysis.udThe model developed in this study is applied to simulate a complete amine-based carbon capture absorber-desorber process.udGiven the relatively simple modelling of the solvent/CO2 interactions, udin which the reactions are treated implicitly through a physical approach, udthe proposed model lends itself well to the investigation of other solvents.
机译:提出了使用链烷醇胺水溶液作为溶剂从气流中分离出二氧化碳(CO2)的吸收器-解吸器过程的预测模型的开发。 ud通过胺水溶液吸收吸收燃烧后的二氧化碳通过帮助减少化石燃料发电厂的大部分CO2排放,很可能在缓解气候变化中发挥重要作用。 ud但是,这项技术的大规模部署存在许多问题,包括能源需求,溶剂降解以及溶剂和溶剂降解产物的潜在损失所导致的环境和健康影响。 ud建模研究可以在解决其中一些问题(包括选择能够产生最佳性能的溶剂和操作条件)中发挥不可估量的补充作用。 ud此处介绍的模型将最先进的SAFT-VR热力学纳入基于速率的过程中奥德尔。所提出的方法的一个特征是,假设整个化学平衡,所有反应均在热力学描述内进行处理。这大大减少了对吸收器性能进行建模所需的实验数据量。此外,与这种类型的反应性系统的许多处理方法相反,在过程模型中未使用任何增强因子。吸收器-解吸器过程模型在gPROMS软件平台中实现,并使用已发布的中试工厂实验数据进行了验证,该实验数据是使用单乙醇胺(MEA)解决方案从空气和二氧化碳流中去除二氧化碳的。 udA衡量液相扩散率的比例,提出了一种可被发现可转移到不同操作条件的方法。对于气相和液相中的温度和成分分布,可以获得可靠的预测,包括对有时在吸收塔高度上出现的温度膨胀的良好描述。 ud使用相同的可传递模型来描述吸收塔和塔顶。 ud通过敏感性分析评估了模型关键参数对不同操作条件的影响。 ud本研究开发的模型用于模拟完整的基于胺的碳捕集吸收器-解吸器过程。 ud溶剂/ CO2相互作用的简单建模, udin通过物理方法隐式处理反应, ud提议的模型非常适合于其他溶剂的研究。

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    Brand Charles;

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