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Performance of Siloxane Mixtures in a High-Temperature Organic Rankine Cycle Considering the Heat Transfer Characteristics during Evaporation

机译:考虑到蒸发过程中的传热特性,硅氧烷混合物在高温有机朗肯循环中的性能

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The application of the Organic Rankine Cycle to high temperature heat sources is investigated on the case study of waste heat recovery from a selected biogas plant. Two different modes of operation are distinguished: pure electric power and combined heat and power generation. The siloxanes hexamethyldisiloxane (MM) and octamethyltrisiloxane (MDM) are chosen as working fluids. Moreover, the effect of using mixtures of these components is analysed. Regarding pure electricity generation, process simulations using the simulation tool Aspen Plus show an increase in second law efficiency of 1.3% in case of 97/03 wt % MM/MDM-mixture, whereas for the combined heat and power mode a 60/40 wt % MM/MDM-mixture yields the highest efficiency with an increase of nearly 3% compared to most efficient pure fluid. Next to thermodynamic analysis, measurements of heat transfer coefficients of these siloxanes as well as their mixtures are conducted and Kandlikar’s correlation is chosen to describe the results. Based on that, heat exchanger areas for preheater and evaporator are calculated in order to check whether the poorer heat transfer characteristics of mixtures devalue their efficiency benefit due to increased heat transfer areas. Results show higher heat transfer areas of 0.9% and 14%, respectively, compared to MM.
机译:通过从选定的沼气厂回收余热的案例研究了有机朗肯循环在高温热源中的应用。区分两种不同的运行模式:纯电力以及热电联产。选择硅氧烷六甲基二硅氧烷(MM)和八甲基三硅氧烷(MDM)作为工作流体。此外,分析了使用这些组分的混合物的效果。关于纯发电,使用模拟工具Aspen Plus进行的过程模拟显示,在97/03 wt%MM / MDM混合物的情况下,第二律效率提高了1.3%,而对于热电联产模式,则为60/40 wt与最有效的纯流体相比,%MM / MDM混合物产生的效率最高,增加了近3%。除了热力学分析,还对这些硅氧烷及其混合物的传热系数进行了测量,并选择了Kandlikar的相关性来描述结果。在此基础上,计算出用于预热器和蒸发器的换热面积,以检查混合物较差的传热特性是否会因增加传热面积而降低其效率效益。结果表明,与MM相比,传热面积分别更高,分别为0.9%和14%。

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