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Multi-objective optimization and exergoeconomic assessment of a new chemical-looping air separation system

机译:新型化学回路空分系统的多目标优化和能效经济评估

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摘要

A new chemical looping air separation (CLAS) system, which is composed of a combined heat and power (CHP) unit and two fixed-bed reactors (FBRs), is developed for trigeneration of electricity, oxygen, and nitrogen simultaneously. Based on the specific oxidation conditions of the elevated oxidation pressure and the oxidation temperature higher than the reduction temperature, the alternate operation of two FBRs is operated periodically to avoid the solid looping cycles. Through exergy analysis of the CLAS using different oxygen carriers, the Mn-based CLAS has the lower exergy efficiency than using other oxygen carriers but it has benefits with low methane depletion rate and small reactor size. By solving a multi-objective optimization algorithm for minimizing the methane depletion rate and reactor size, the Pareto-optimal front of the Mn-based CLAS shows that the exergy efficiency improvement would increase the fuel consumption, enlarge the reactor size and reduce the feasible objective region. Through exergoeconomic analysis of the Mn-based CLAS, the specific oxidation conditions could obviously increase the exergy destruction cost of the oxidation reaction but it can be compensated by the relative cost differences of the CHP units.
机译:开发了一种新的化学回路空气分离(CLAS)系统,该系统由热电联产(CHP)单元和两个固定床反应器(FBR)组成,用于同时发电三联产电,氧和氮。基于升高的氧化压力和高于还原温度的氧化温度的特定氧化条件,两个FBR的交替运行定期进行以避免固体循环。通过对使用不同氧气载体的CLAS进行能值分析,与其他氧气载体相比,基于Mn的CLAS的能值效率较低,但它具有甲烷耗减率低和反应器尺寸小的优点。通过求解最小化甲烷耗竭率和反应器尺寸的多目标优化算法,Mn基CLAS的帕累托最优前沿表明,火用效率的提高将增加燃料消耗,扩大反应器尺寸并降低可行目标区域。通过对锰基CLAS的能效经济分析,特定的氧化条件可以明显增加氧化反应的本能破坏成本,但可以通过CHP装置的相对成本差异来补偿。

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