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Thermodynamic Analysis of A Novel Solar Hybrid System incorporating Methane Steam Reforming and A Recuperative Direct-fired Supercritical Carbon Dioxide Cycle

机译:结合甲烷蒸汽重整和换热直燃超临界二氧化碳循环的新型太阳能混合系统的热力学分析

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To achieve the zero emission for fossil-based power generation and advance the utilization of solar energy, a novel solar hybrid system integrating methane steam reforming and a recuperative direct-fired supercritical carbon dioxide (sCO_2) power cycle was proposed and analysed. In the proposed system, the concentrated solar energy is used to drive the methane steam reforming to be converted into the stable chemical energy in the syngas; then, the produced syngas is combusted with high-purity oxygen to drive a semi-closed sCO? power cycle with intensive heat recuperation and near-zero emission. Through introducing solar heat into the power cycle at the fuel side by reforming reaction, the methane consumption is greatly reduced and the main thermodynamic parameters are similar with the reference system without solar penetration, meaning the solar integration at fuel side has less effect on the operation parameters in the power cycle. Also, the system can operate flexible in response to the solar energy variability by storing the surplus syngas. The thermodynamic analysis results showed that, the proposed solar hybrid system can save 10.8% of methane consumption and the net system efficiency reaches 42.6%, 0.4 percentage points higher than the reference system, revealing the solar penetration can improve the system thermodynamic performance. From the perspective of solar energy utilization, the solar contribution ratio is 10.0%> and the solar-to-electricity efficiency soars to 26.7%o. The proposed concept may provide a science and technology foundation for efficient utilization of both fossil fuel and solar energy in an advance zero emission power cycle.
机译:为了实现基于化石的发电的零排放并促进太阳能的利用,提出并分析了将甲烷蒸汽重整和同流式直接燃烧超临界二氧化碳(sCO_2)功率循环相结合的新型太阳能混合系统。在所提出的系统中,集中的太阳能被用来驱动甲烷蒸汽重整转化为合成气中的稳定化学能。然后,将产生的合成气与高纯度氧气燃烧以驱动半封闭的sCO?大功率热循环和接近零排放的功率循环。通过重整反应将太阳热引入燃料侧的动力循环中,甲烷消耗大大降低,主要热力学参数与没有太阳穿透的参考系统相似,这意味着燃料侧的太阳能集成对运行的影响较小重启后的参数。而且,该系统可以通过存储多余的合成气来灵活地响应太阳能的可变性运行。热力学分析结果表明,拟建的太阳能混合系统可节省甲烷消耗量的10.8%,净系统效率达到42.6%,比参考系统高0.4个百分点,表明太阳能的渗透可以提高系统的热力学性能。从太阳能利用的角度来看,太阳能贡献率为10.0%,太阳能发电效率飙升至26.7%。提出的概念可以为在提前的零排放功率循环中有效利用化石燃料和太阳能提供科学和技术基础。

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