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Analysis and optimal design of membrane-based CO2 capture processes for coal and natural gas-derived flue gas

机译:煤与天然气衍生烟气膜的膜基二氧化碳捕获工艺的分析与优化设计

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Membrane-based processes for carbon capture and storage have many compelling advantages that have encouraged development of membrane materials for the post-combustion separation of CO2 from flue gases. We investigated the performance of two CO2 capture processes when integrated with representative flow sheets of coal and natural gas-burning power plants. Using process simulations and optimization techniques, we analyzed how the membrane selectivity and process pressures affect the minimum achievable power requirement and the consequent quantity of membrane area required. In addition, we used a model of process equipment costs to study the dependence of total equipment cost for the CO2 capture process on these same variables. Higher selectivity generally leads to lower power consumption by the CO2 capture process, while increasing the pressure of the flue gas leads to lower required membrane areas. Estimated equipment costs tend to be insensitive to the selectivity of the membrane, but are strongly influenced by the flue gas pressure.
机译:基于膜的碳捕获和储存的方法具有许多引人注目的优势,鼓励膜材料的膜材料从烟道气体的燃烧后分离的发展。我们调查了与煤炭和天然气燃烧发电厂的代表流程片集成时两氧化碳捕获过程的性能。使用过程模拟和优化技术,我们分析了膜选择性和工艺压力如何影响最小可实现的功率要求和所需的膜面积的随后的数量。此外,我们使用了过程设备成本的模型来研究与这些相同变量的CO2捕获过程的总设备成本的依赖性。更高的选择性通常通过CO 2捕获过程导致较低的功耗,同时增加烟道气的压力导致较低所需的膜区域。估计的设备成本往往对膜的选择性不敏感,但受到烟道气压的强烈影响。

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