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Design and techno-economic optimization of a rotary chemical looping combustion power plant with CO_2 capture

机译:具有CO_2捕集的旋转化学循环燃烧电厂的设计与技术经济优化。

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The rotary chemical looping combustion reactor design - which utilizes oxygen carriers in a matrix of micro channels for indirect fuel conversion - provides a viable path for fossil-based electric power generation with CO2 capture. Its thermally integrated matrix of micro channels minimizes irreversibilities associated with heat transfer in the reactor, and establishes multiscale coupling between oxygen carrier kinetics, reactor geometry and plant operating conditions. In this study, we implement an optimization framework that exploits this multiscale coupling for simultaneous reactor design and power plant economic optimization. Results for the methane-fueled power plant reveal optimized thermal efficiencies of 54-56% for a rotary chemical looping recuperative Brayton cycle plant, with compressor pressure ratio in the 3-7 range. By switching from an efficiency to an economic objective, we identified solutions that reduced electricity cost by about 11%; by performing scaling and technology maturity projections, we show competitive economics for the rotary chemical looping plant with CO2 capture.
机译:旋转式化学循环燃烧反应堆设计-利用微通道矩阵中的氧气载体进行间接燃料转化-为通过化石燃料捕集基于化石的发电提供了一条可行的途径。其微通道的热集成矩阵最大程度地减少了与反应器中传热相关的不可逆性,并在氧气载体动力学,反应器几何形状和工厂运行条件之间建立了多尺度耦合。在这项研究中,我们实现了一个优化框架,该框架利用这种多尺度耦合来同时进行反应堆设计和电厂经济优化。以甲烷为燃料的发电厂的结果显示,旋转式化学循环换热式布雷顿循环发电厂的最佳热效率为54-56%,压缩机的压力比为3-7。通过从效率目标转变为经济目标,我们确定了可将电费成本降低约11%的解决方案。通过执行缩放和技术成熟度预测,我们展示了具有CO2捕获功能的旋转式化学循环装置的竞争性经济学。

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