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A novel hybrid biomass-solar driven triple combined power cycle integrated with hydrogen production: Multi-objective optimization based on power cost and CO_2 emission

机译:一种新型混合生物量 - 太阳能驱动三重组合电力循环,与氢气生产一体化:基于功率成本和CO_2排放的多目标优化

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摘要

Utilization of hybrid renewable resources in supplying clean energy is a new idea which helps to fulfill individual drawbacks of each renewable source. In this work, an innovative triple combined power cycle driven by hybrid biomass-solar energies is proposed, analyzed and optimized from the exergy, economics, and environmental standpoints. In order to fulfill the intermittent nature of solar energy, it is used for hydrogen production (via Proton Exchange Membrane (PEM) electrolyzer supplied by electricity from Photovoltaic-Thermal (PVT) panels) which is injected into a post-firing combustion chamber of the gas turbine. The proposed system consists of a biomass fueled gas turbine combined with a closed Brayton cycle and a Rankine cycle as the bottoming cycles. To examine the system performance, thermoeconomic evaluation is carried out and multi-objective optimization is performed to find the optimum operating conditions based on Levelized Cost Of Electricity (LCOE) and CO2 emission. The results revealed that, incorporation of solar-based hydrogen production with the biomass-based gas turbine results in a significant decrease in CO2 emissions and biomass consumption as well as increase in power generation capacity. However, it brings about a decrease of exergetic efficiency (due to the large exergy destruction in PVT and PEM electrolyzer) and an increase of LCOE (due to the additional expenditures imposed by PVT panels and PEM electrolyzer). Under the best operating conditions based on multi-objective optimization, the proposed triple combined cycle attains exergy efficiency of 30.44% with a LCOE of 61.37 $/MWh, and CO2 emission of 0.4579 kg/kWh.
机译:利用混合再生资源供应清洁能源是一个新的想法,有助于满足每个可再生源的个别缺点。在这项工作中,提出了一种由混合生物量 - 太阳能驱动的创新三重组合电源循环,从Exergy,经济学和环境观点分析和优化。为了满足太阳能的间歇性,它用于氢气生产(通过来自光伏 - 热(PVT)板供应的电力的质子交换膜(PEM)电解槽)注入燃烧后的燃烧室燃气轮机。所提出的系统由生物质燃料燃气轮机组成,燃气涡轮机与闭合的Brayton循环和Quantine循环组成,作为底部循环。为了检查系统性能,进行热经济评估,并进行多目标优化,以找到基于电力(LCoE)和CO2排放量的最佳操作条件。结果表明,利用基于生物质的燃气轮机掺入了太阳能的氢气产生导致二氧化碳排放和生物质消耗的显着降低,以及发电能力的增加。然而,它带来了淬火效率的降低(由于PVT和PEM电解槽中的巨大驱动破坏)和LCOE的增加(由于PVT面板和PEM电解槽施加的额外支出)。在基于多目标优化的最佳运行条件下,所提出的三重组合循环达到了30.44%的高度效率,LCOE为61.37美元/毫安,二氧化碳排放为0.4579千克/千瓦时。

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