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Optimization of Biomass-Fuelled Combined Cooling, Heating and Power (CCHP) Systems Integrated with Subcritical or Transcritical Organic Rankine Cycles (ORCs)

机译:与亚临界或跨临界有机朗肯循环(ORC)集成的生物质燃料联合冷却,加热和动力(CCHP)系统的优化

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This work is focused on the thermodynamic optimization of Organic Rankine Cycles (ORCs), coupled with absorption or adsorption cooling units, for combined cooling heating and power (CCHP) generation from biomass combustion. Results were obtained by modelling with the main aim of providing optimization guidelines for the operating conditions of these types of systems, specifically the subcritical or transcritical ORC, when integrated in a CCHP system to supply typical heating and cooling demands in the tertiary sector. The thermodynamic approach was complemented, to avoid its possible limitations, by the technological constraints of the expander, the heat exchangers and the pump of the ORC. The working fluids considered are: n-pentane, n-heptane, octamethyltrisiloxane, toluene and dodecamethylcyclohexasiloxane. In addition, the energy and environmental performance of the different optimal CCHP plants was investigated. The optimal plant from the energy and environmental point of view is the one integrated by a toluene recuperative ORC, although it is limited to a development with a turbine type expander. Also, the trigeneration plant could be developed in an energy and environmental efficient way with an n-pentane recuperative ORC and a volumetric type expander.
机译:这项工作的重点是有机朗肯循环(ORC)的热力学优化,结合吸收式或吸附式冷却装置,用于结合生物质燃烧产生的冷却加热和发电(CCHP)。通过建模获得结果,其主要目的是当将这些类型的系统(尤其是亚临界或跨临界ORC)集成到CCHP系统中以提供第三产业的典型供热和制冷需求时,为这些系统的运行条件提供优化准则。为了避免其可能的局限性,通过ORC的膨胀机,热交换器和泵的技术约束对热力学方法进行了补充。考虑的工作流体是:正戊烷,正庚烷,八甲基三硅氧烷,甲苯和十二甲基环六硅氧烷。此外,还研究了不同最佳CCHP工厂的能源和环境绩效。从能源和环境的角度来看,最佳设备是由甲苯换热器ORC集成而成的设备,尽管它仅限于采用涡轮式膨胀机的开发。同样,可以使用正戊烷换热式ORC和容积式膨胀机以节能高效的方式开发三代发电厂。

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