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Energy and exergy assessment of a combined supercritical Brayton cycle-orc hybrid system using solar radiation and coconut shell biomass as energy source

机译:使用太阳辐射和椰壳生物量作为能源的高速临界布雷顿循环兽人混合系统的能量和声学评估

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The present investigation presents a novel hybrid solar-biomass system for electric power generation in remote areas. The proposed system integrates a Supercritical Brayton Cycle (SBC) to an Organic Rankine Cycle (ORC) as a bottoming cycle, driven by a Concentrated Solar Tower (CST) system and biomass furnace (coconut shell). The thermal energy generation potential of the biomass was determined from the fiber content, lignin, density, calorific value, and ash content, and the level of pollutant emissions at different combustion rates. Energy and exergy analyses were carried out considering three scenarios: hybrid solar-biomass SBC-ORC, SBC-ORC/solar, and SBC-ORC/biomass. The results revealed that coconut shells feature a low content of inorganic matter with a calorific value of 25.29 MJ/kg, and the best combustion efficiency (CO2/CO) was given at a speed of 0.0895 degrees C.min(-1) (43.16%). The hybrid solar-biomass SBC-ORC system showed an exergetic efficiency of 26.60%, an increase of 17.28% with respect to the SBC-ORC/solar system in its base condition. The turbine inlet temperature was the variable with the greatest influence on the exergetic efficiency of the SBC-ORC/solar system, which reached a maximum of 23.8% at 700 degrees C. In conclusion, the integration of coconut shell biomass as an alternative and supplementary thermal source is a promising solution for the intermittence of solar-driven systems. This study demonstrated that the novel hybrid system ensures stability, good combustion efficiency, and enhanced performance compare to the standalone solar operation. (C) 2021 Elsevier Ltd. All rights reserved.
机译:本研究提出了一种用于偏远地区的电力发电的新型混合太阳能生物量系统。所提出的系统通过集中的太阳能塔(CST)系统和生物质炉(椰子壳)驱动,将超临界布雷顿循环(SBC)集成为作为底部循环的有机朗肯循环(ORC)。生物质的热能发电电位由纤维含量,木质素,密度,热值和灰分含量和不同燃烧率的污染物排放水平确定。考虑三种情况,进行了能量和漏洞分析:混合太阳能 - 生物量SBC-ORC,SBC-ORC / Solar和SBC-ORC / BIAMAS。结果表明,椰子壳具有低含量的无机物质,具有25.29mJ / kg的热值,并且最佳燃烧效率(CO2 / CO)以0.0895℃(-1)(43.16) %)。杂交太阳能 - 生物量SBC-ORC系统显示出促进效率26.60%,在其基本条件下,SBC-ORC /太阳系增加了17.28%。涡轮机入口温度是对SBC-ORC /太阳能系统的前培养效率影响最大的变量,其最高可达700℃的最高23.8%。总之,椰壳生物量作为替代和补充的整合热源是对太阳能驱动系统间歇性的有希望的解决方案。本研究表明,新型混合系统可确保稳定,良好的燃烧效率,增强的性能与独立的太阳能运行相比。 (c)2021 elestvier有限公司保留所有权利。

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