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首页> 外文期刊>International Journal of Greenhouse Gas Control >Improving the energy cost of an absorber-stripper CO 2 capture process through economic model predictive control
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Improving the energy cost of an absorber-stripper CO 2 capture process through economic model predictive control

机译:通过经济模型预测控制,提高吸收辊剥离器CO 2 捕获过程

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摘要

Carbon dioxide (CO2) is the major source of greenhouse gas and its capture and recovery is the key to effective reduction of CO2emissions. Optimization of the CO2capture process plays a critical role in the reduction of energy cost. The current strategy only deals with the steady state optimization of the CO2capture process but the CO2concentration in the plant varies with time and as a result a dynamic study of the economic assessment will reflect the true cost better. The economic model predictive control (EMPC) that combines real-time economic process optimization and feedback control is applied to the optimization of CO2capture process. The large energy requirement for solvent regeneration is optimized in dynamic settings. Unlike the conventional steady state consideration of the economic performance assessment, the proposed method allows the cost to be adjusted to the volatile market conditions that varies rapidly. Case studies are then presented to show the benefits of the EMPC optimization for CO2capture process.
机译:二氧化碳(二氧化碳)是温室气体的主要来源,其捕获和恢复是有效减少共同emissions的关键。 Co2Capture工艺的优化在降低能量成本中起着关键作用。目前的策略仅涉及CO2Capture工艺的稳态优化,但工厂中的CO2CONCONATRACT随着时间的变化而变化,因此对经济评估的动态研究将更好地反映真正的成本。将实时经济流程优化和反馈控制结合的经济模型预测控制(EMPC)应用于CO2CAPTURE过程的优化。溶剂再生的大能量要求在动态设置中进行了优化。与经济绩效评估的传统稳态考虑不同,该方法允许将成本调整为迅速变化的挥发性市场条件。然后提出了案例研究以表明EMPC优化对于CO2CAPTURE过程的益处。

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