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Exergy, Economic, and Life-Cycle Assessment of ORC System for Waste Heat Recovery in a Natural Gas Internal Combustion Engine

机译:用于天然气内燃机中的废热回收兽人系统的暴力,经济和生命周期评估

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摘要

In this article, an organic Rankine cycle (ORC) was integrated into a 2-MW natural gas engine to evaluate the possibility of generating electricity by recovering the engine's exhaust heat. The operational and design variables with the greatest influence on the energy, economic, and environmental performance of the system were analyzed. Likewise, the components with greater exergy destruction were identified through the variety of different operating parameters. From the parametric results, it was found that the evaporation pressure has the greatest influence on the destruction of exergy. The highest fraction of exergy was obtained for the Shell and tube heat exchanger (ITC1) with 38% of the total exergy destruction of the system. It was also determined that the high value of the heat transfer area increases its acquisition costs and the levelized cost of energy (LCOE) of the thermal system. Therefore, these systems must have a turbine technology with an efficiency not exceeding 90% because, from this value, the LCOE of the system surpasses the LCOE of a gas turbine. Lastly, a life cycle analysis (LCA) was developed on the system operating under the selected organic working fluids. It was found that the component with the greatest environmental impact was the turbine, which reached a maximum value of 3013.65 Pts when the material was aluminum. Acetone was used as the organic working fluid.
机译:在本文中,将有机朗肯循环(ORC)集成到2 MW天然气发动机中,以通过恢复发动机的废热来评估发电的可能性。分析了对系统的能源,经济和环境性能影响最大的操作和设计变量。同样地,通过各种不同的操作参数鉴定具有更大漏洞破坏的组分。从参数结果来看,发现蒸发压力对Deertgy的破坏具有最大影响。为壳和管热交换器(ITC1)获得最高的漏洞,占系统总爆破的38%。还确定传热面积的高值增加了热系统的采集成本和能量(LCOE)的稳定成本。因此,这些系统必须具有涡轮机技术,其效率不超过90%,因为从该值中,系统的LCOE超越了燃气轮机的LCOE。最后,在所选择的有机工作流体下操作的系统上开发了生命周期分析(LCA)。结果发现,当材料是铝时,具有最大环境影响的组件是涡轮机,该涡轮机达到最大值为3013.65分。丙酮用作有机工作流体。

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