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Adsorption-based process modelling for post-combustion CO2 capture

机译:基于吸附的后燃烧二氧化碳捕获过程建模

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The EU FP7-funded HiPerCap project aims to develop novel post-combustion CO2 capture technologies and processes which are environmentally benign and have high potential to lead to breakthroughs in energy consumption and overall cost. Three different separation technologies are being evaluated on a fair basis: absorption, membranes and adsorption. In this work, some of the results related to the development of adsorption-based fixed bed systems are presented. The design and optimization of a multibed adsorption-based separation process requires the use of powerful simulators that can describe the non-steady state process. However, prior to use a mathematical model for process design this should be validated against experimental data. A VTSA experiment has been carried out in order to provide information on the cyclic performance of a microporous biochar. The working capacity of the adsorbent is reduced due to incomplete regeneration during cyclic operation, although it stabilizes at 0.5 mol CO2 kg~(-1) and 0.4 mol H2O kg~(-1) once cyclic steady state is reached. A non-isothermal non-adiabatic dynamic model of the VTSA cycle was built in Aspen Adsorption, which makes use of the Ideal Adsorbed Solution theory to account for competitive adsorption between N2, CO2 and H2O. The model satisfactorily describes the history of the temperature of the adsorbent, the pressure, the total mass flow rate of the effluent, and the working capacity at cyclic steady state of the VTSA experiment. The validated model will be used as a starting point for process development.
机译:欧盟FP7资助的HIPERPAP项目旨在开发新的燃烧后CO2捕获技术和过程,这些技术和过程是环境良好的,并且具有高潜力,以导致能耗和总体成本的突破。在公平的基础上进行三种不同的分离技术:吸收,膜和吸附。在这项工作中,提出了与吸附的固定床系统的开发相关的一些结果。多光束吸附的分离过程的设计和优化需要使用能描述非稳态过程的强大模拟器。但是,在使用过程设计的数学模型之前,应验证防止实验数据。已经进行了VTSA实验,以便提供有关微孔生物炭的循环性能的信息。由于环状操作期间的不完全再生,吸附剂的工作能力降低,尽管它稳定在0.5mol CO 2 Kg〜(-1)和0.4mol H 2 O Kg〜(-1)时达到循环稳态。 VTSA循环的非等温非绝热动态模型建立在Aspen吸附中,这是利用理想的吸附解决方案理论,以考虑N2,CO2和H2O之间的竞争吸附。该模型令人满意地描述了吸附剂的温度,压力,流出物的总质量流速,以及循环稳态的工作能力的循环稳态实验。经过验证的模型将被用作过程开发的起点。

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