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Designing the microturbine engine for waste-derived fuels

机译:设计用于废物衍生燃料的微型涡轮发动机

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摘要

Presented paper deals with adaptation procedure of a microturbine (MGT) for exploitation of refuse derived fuels (RDF). RDF often possess significantly different properties than conventional fuels and usually require at least some adaptations of internal combustion systems to obtain full functionality. With the methodology, developed in the paper it is possible to evaluate the extent of required adaptations by performing a thorough analysis of fuel combustion properties in a dedicated experimental rig suitable for testing of wide-variety of waste and biomass derived fuels. In the first part key turbine components are analyzed followed by cause and effect analysis of interaction between different fuel properties and design parameters of the components. The data are then used to build a dedicated test system where two fuels with diametric physical and chemical properties are tested - liquefied biomass waste (LW) and waste tire pyrolysis oil (TPO). The analysis suggests that exploitation of LW requires higher complexity of target MGT system as stable combustion can be achieved only with regenerative thermodynamic cycle, high fuel preheat temperatures and optimized fuel injection nozzle. Contrary, TPO requires less complex MGT design and sufficient operational stability is achieved already with simple cycle MGT and conventional fuel system. The presented approach of testing can significantly reduce the extent and cost of required adaptations of commercial system as pre-selection procedure of suitable MGT is done in developed test system. The obtained data can at the same time serve as an input for fine-tuning the processes for RDF production.
机译:提出的论文涉及微涡轮机(MGT)对垃圾衍生燃料(RDF)的利用的适应程序。 RDF通常具有与常规燃料不同的特性,并且通常至少需要对内燃机进行一些改装才能获得全部功能。利用本文开发的方法,可以通过在专用的试验装置中对燃料燃烧特性进行全面分析来评估所需适应性的程度,该试验装置适用于测试各种废物和生物质衍生燃料。在第一部分中,首先分析了关键涡轮机部件,然后进行了因果关系分析,分析了不同燃料特性与部件设计参数之间的相互作用。然后,将数据用于构建专用的测试系统,在该系统中测试两种具有完全相同的物理和化学特性的燃料-液化生物质废料(LW)和废轮胎热解油(TPO)。分析表明,利用LW需要目标MGT系统更高的复杂性,因为只有通过再生热力学循环,较高的燃料预热温度和优化的燃料喷嘴才能实现稳定燃烧。相反,TPO不需要那么复杂的MGT设计,并且已经通过简单的循环MGT和常规燃料系统实现了足够的运行稳定性。由于在开发的测试系统中已经完成了合适的MGT的预选程序,因此所提出的测试方法可以显着降低商业系统所需的适应范围和成本。所获得的数据可同时用作微调RDF生产过程的输入。

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