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Rate-based Modelling and Validation of a Pilot Absorber Using MDEA Enhanced with Carbonic Anhydrase (CA)

机译:用MDEA增强碳酸酐酶(CA)的速率为基于速率的模拟和验证

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The great paradox of the 21st century is that we must meet the increasing global demand for energy and products while simultaneously mitigating the climate change. If both these criteria are to be met, carbon capture and storage is an imperative technology for sustainable energy infrastructure development. Post-combustion capture is a mature capture technology, however, to make it economically attractive, design of innovative solvents and process optimization is of crucial importance. An example for promising solvent is MDEA enhanced with carbonic anhydrase (CA), due to its fast kinetics and low solvent-regeneration energy demand. The focus of this work is to develop a rate-based model for CO2 absorption using MDEA enhanced with CA and to validate it against pilot-scale absorption experiments. In this work, we compare model predictions to measured temperature and CO2 concentration profiles for different L/G ratios, lean CO2 loadings, gas CO2 content and packing height. We show that the developed model is suitable for CO2 capture simulation and optimization using MDEA and MDEA enhanced with CA. Furthermore, we investigate the accuracy of the General Method (GM) enhancement factor model for CO2 absorption/desorption using wetted-wall column data: 0 to 0.5 CO2 loading and temperatures between 298 and 328 K. The present study represents a first step towards developing and optimizing a CA promoted MDEA CO2 capture process.
机译:21世纪的伟大悖论是,我们必须满足全球对能源和产品的越来越多的需求,同时缓解气候变化。如果要满足这两个标准,碳捕获和储存是可持续能源基础设施发展的必要技术。燃烧后捕获是一种成熟的捕获技术,然而,在经济上具有经济上具有吸引力,创新溶剂的设计和过程优化的重要性至关重要。由于其快速动力学和低溶剂 - 再生能量需求,具有碳酸酐酶(CA)增强了溶剂的一个例子。这项工作的重点是使用MDEA通过CA的增强和验证试验尺度吸收实验来开发基于速率的CO2吸收模型。在这项工作中,我们将模型预测与不同的L / G比,贫二氧化碳载荷,气体二氧化碳含量和包装高度进行比较测量温度和CO2浓度谱。我们表明,开发的模型适用于CA的MDEA和MDEA的CO2捕获模拟和优化。此外,我们研究了使用湿润 - 壁柱数据的一般方法(GM)增强因子模型的准确性:使用湿润壁柱数据:0至0.5CO2加载和温度在298和328k之间。本研究代表了发展的第一步并优化Ca促进的MDEA CO2捕获过程。

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